dc.relation.references | ABATENH, E.; GIZAW, B.; TSEGAYE, Z.; WASSIE, M. The role of microorganisms in
bioremediation-A review. Journal of Environmental Biology, v. 2, n.1, p. 038-046, 2017.
ISSN: 2690-0777
ABDALLAH, M.F.; AMEYE, M.; DE SAEGER, S.; AUDENAERT, K.; HAESAERT, G.
Biological control of mycotoxigenic fungi and their toxins: An update for the pre-harvest
approach. In: JOBEHN, P.B.; STEPMAN, F. Mycotoxins-Impact and Management Strategies.
Intech Open, 2018. DOI: 10.5772/intechopen.76342
ABDELHALEEM, H. A.; ZEIN, H. S.; AZEIZ, A.; SHARAF, A. N.; ABDELHADI, A. A.
Identification and characterization of novel bacterial polyaromatic hydrocarbon-degrading
enzymes as potential tools for cleaning up hydrocarbon pollutants from different environmental
sources. Environmental Toxicology and Pharmacology, v. 67, p. 108-116, 2019.
DOI:10.1016/j.etap.2019.02.009
ABDEL-SHAFY, H. I.; MANSOUR, M. S. M. A review on polycyclic aromatic hydrocarbons:
source, environmental impact, effect on human health and remediation. Egyptian Journal of
Petroleum, v. 25, n. 1, p. 107-123, 2016. DOI: 10.1016/j.ejpe.2015.03.011
ABDULLAH, O.A.; FATHI, R.A.; FADHEL, M.N. Use of fungi in bioremediation of
contaminated sites with hydrocarbons. Plant Archives, v. 20, n.2, p. 1406-1410, 2020.
ISSN:0972-5210
ABDULSALAM, S.; OMALE, A.B. Comparison of biostimulation and bioaugmentation
techniques for the remediation of used motor oil contaminated soil. Brazilian Archives of
Biology and Technology, v. 52, n. 3, p. 747-754, 2009. DOI: 10.1590/S1516-
89132009000300027
ABHA SINGH, KUMAR, V; SRIVASTAVA, J.N. Assessment of Bioremediation of Oil and
Phenol Contents in Refi nery Waste Water via Bacterial Consortium. Journal of Petroleum &
Environmental Biotechnology, v. 4, p. 1-4, 2013. DOI: 10.4172/2157-7463.1000145
ABTAHI, H.; PARHAMFAR, M.; SAEEDI, R.; VILLASENOR, J.; SARTAJ, M.; KUMAR, V.;
KOOLIVAND, A. Effect of competition between petroleum-degrading bacteria and indigenous
compost microorganisms on the efficiency of petroleum sludge bioremediation: Field application
of mineral-based culture in the composting process. Journal of Environmental Management, v.
258, p. 110013, 2020. DOI:10.1016/j.jenvman.2019.110013
ADRIO, J.L.; DEMAIN, A.L. Microbial enzymes: tools for biotechnological processes. Biomolecules, v. 4, n. 1, p. 117-139, 2014. DOI: 10.3390/biom4010117
AFTAB, M.; TAHIR, A.; ASIM, T.; MARYAM, I. Optimization of cultural conditions for
enhanced production of laccase by Aspergillus flavus Maf 0139. Biologia (Pakistan), v. 64, n. 2,
p. 247-255, 2018. ISSN 2313 – 206X
179
AGGARWAL, SURUCHI; YADAV, AMIT KUMAR. False discovery rate estimation in
proteomics. In: Aggarwal, S.; Yadav, A. K. Statistical Analysis in Proteomics. Humana Press,
New York, NY, 2016. p. 119-128. DOI: 10.1007/978-1-4939-3106-4_7
AGRAWAL, N.; VERMA, P.; SINGH, R.S.; SHAHI, S.K. Ligninolytic enzyme production by
white rot fungi Podoscypha elegans strain FTG4. International Journal of Current
Microbiology and Applied Sciences, v. 6, n. 5, p. 2757-2764, 2017. DOI:
10.20546/ijcmas.2017.605.309
AHMED, A. B.; NAJWA, M.J.A.; ABU-MEJDAD, WIJDAN H.; AL-TAMIMI.
Mycodegradation of Crude Oil by Fungal Species Isolated from Petroleum Contaminated Soil.
International Journal of Innovative Research in Science, Engineering and Technology, v. 5,
p. 1517-1524, 2016. DOI:10.15680/IJIRSET.2016.0502068
AI-JAWHARI, I.F.H. Ability of Some Soil Fungi in Biodegradation of Petroleum Hydrocarbon.
Journal of Applied & Environmental Microbiology, v. 2, p. 46-52, 2014. DOI: 10.12691/ jaem
- 2-2-3
ALAEY, M.; NADERI, R.; VEZVAEI, A.; KHALIGHI, A. Comparing study between four
different methods of genomic DNA extraction from Cyclamen persicum Mill. International
Journal of Agriculture And Biology, v. 7, p. 882-884, 2005. DOI:1560–8530/2005/07–6–882–
884
AL-DAHHAN, W.H.; MAHMOOD, S.M.A. Classification of Crude Oils and its Fractions on the
Basis of Paraffinic, Naphthenic and Aromatics. Al-Nahrain Journal of Science, v. 22, n. 3, p.
35-42, 2019. DOI: 10.22401/ANJS.22.3.05
ALEGBELEYE, O.O.; OPEOLU, B.O.; JACKSON, V.A. Polycyclic aromatic hydrocarbons: a
critical review of environmental occurrence and bioremediation. Environmental management,
v. 60, n. 4, p. 758-783, 2017. DOI: 10.1007/s00267-017-0896-2
ALEXANDRE-JUNIOR, W.R.; SILVA, W.S.; RAMOS, V.O. Acceleration of biochemical
processes through a lyophilized enzymatic complex. Brasil Patente BR 10 2016 006137 7. 2016.
AL-HAWASH, A.B.; ZHANG, J.; LI, S.; LIU, J.; GHALIB, H.B.; ZHANG, X.M.A.F.
Biodegradation of n-hexadecane by Aspergillus sp. RFC-1 and its mechanism. Ecotoxicol
Environ Saf, v. 164, p. 398–408, 2018. DOI: 10.1016/j.ecoenv.2018.08.049
ALLRED, DEGRAY, EDWARDS, HEDRICK, KLEMME, ROGERS, WULF; HODGE.
Proposed procedures for microbiological examination of fuels. SIM Special Publications, No. 1.
Merck, Sharp & Dohme Research Laboratories, Rahway, N.J, 1963.
ALTSCUL, S.F.; GISH, W.; MYERS, E.W.; AND LIPMAN, D.J. Basic local alignment search
tool. Journal of Molecular Biology, v. 215, p. 403-410, 1990. DOI: 10.1016/S0022-
2836(05)80360-2
180
AMIT, K.; NAKACHEW, M.; YILKAL, B.; MUKESH, Y. A review of factors affecting
enzymatic hydrolysis of pretreated lignocellulosic Biomass. Research Journal of Chemistry
and Environment, v. 22, p. 62–67, 2018.
AMORIM FRANCO, T. M.; BLANCHARD, J. S. Bacterial branched-chain amino acid
biosynthesis: structures, mechanisms, and drugability. Biochemistry, v. 56, n. 44, p. 5849-5865,
2017. DOI:10.1021/acs.biochem.7b00849.
ANDRADE, J.A.; AUGUSTO, F.; JARDIM, I.C.; SALES, F. Biorremediação de solos
contaminados por petróleo e seus derivados. Eclética Química Journal, v. 35, n. 3, p. 17-43,
2010. DOI: 10.1590/S0100-46702010000300002
ANJUM, K.; SADIQ, I.; CHEN, L.; KALEEM, S.; LI, X.C.; ZHANG, Z.; LIAN, X.Y. Novel
antifungal janthinopolyenemycins A and B from a co-culture of marine-associated
Janthinobacterium spp. ZZ145 and ZZ148. Tetrahedron Lett, v. 59, n. 38, p. 3490-3494, 2018.
DOI: 10.1016/j.tetlet.2018.08.022
ANVISA - Agência Nacional de Vigilância Sanitária. Disponível
em:<http://portal.anvisa.gov.br/>. Acessado em: Maio 2020.
ANWAR PHULPOTO, A.H.; QAZI, M.A; MANGI, S.; AHMED, S.; IHSAN-UL-HAQ; PHUL,
A.R.; KANHAR, N.A. Bioremediation of Oil-Based Paint from Aqueous Media by Novel
Indigenous Brevibacillus parabrevis Strain NAP3 and its Toxicity Assessment. Pol. J. Environ.
Stud, v. 26, n.1, p. 229-237, 2017. DOI: 10.15244/pjoes/62905
ARAÚJO, B. Políticas de apoio à inovação no Brasil: uma análise de sua evolução recente.
Rio de Janeiro: Ipea, 1.759, 2012. Available at: <http://hdl.handle.net/10419/91150>
ARAÚJO, S.C. DA S.; SILVA-PORTELA, R.C.B.; DE LIMA, D.C.; DA FONSÊCA, M.M.B.;
ARAÚJO, W.J.; DA SILVA, U.B.; NAPP, A.P.; PEREIRA, E.; VAINSTEIN, M.H.; AGNEZLIMA, L.F. MBSP1: a biosurfactant protein derived from a metagenomic library with activity in
oil degradation. Sci Rep, v. 10, 2020. DOI:10.1038/s41598-020-58330-x
ARCHAMBAULT, E.; CAMPBELL, D.; GINGRAS, Y.; LARIVIÈRE, V. Comparing
bibliometric statistics obtained from the Web of Science and Scopus. J Assoc Inf Sci Technol, v.
60, n. 7, p. 1320–1326, 2009. DOI: 10.1002/asi.21062
ARIA, M.; CUCCURULLO, C. bibliometrix: An R-tool for comprehensive science mapping
analysis. Journal ofInformetrics, v. 11, n. 4, p 959-975, 2017. DOI: 10.1016/j.joi.2017.08.007
ARORA, D. S.; GILL, P. K. Comparison of two assay procedures for lignin peroxidase. Enzyme
and Microbial Technology, v. 28, p. 602–605, 2001. DOI: 10.1016/s0141-0229(01)00302-7
ARPITA GHOSH; PAPITA DAS SAHA, Optimization of copper bioremediation by
Stenotrophomonas maltophilia PD2. Journal of Environmental Chemical Engineering, v. 1, n
3, p. 159-163, 2013. DOI: 10.1016/j.jece.2013.04.012
181
ASEMOLOYE, M.D.; AHMAD, R.; JONATHAN, S.G. Transcriptomic responses of catalase,
peroxidase and laccase encoding genes and enzymatic activities of oil spill inhabiting
rhizospheric fungal strains. Environ Pollut, v. 235, p. 55-64, 2018. DOI:
10.1016/j.envpol.2017.12.042
ASEMOLOYE, M.D.; TOSI, S.; DACCÒ, C.; WANG, X.; XU, S.; MARCHISIO, M.A.; GAO,
W.; JONATHAN, S.G.; PECORARO L. Hydrocarbon Degradation and Enzyme Activities of
Aspergillus oryzae and Mucor irregularis Isolated from Nigerian Crude Oil-Polluted Sites.
Microorganisms, v. 8, n. 12, p. 1912, 2020. DOI: 10.3390/microrganisms8121912
ASSES, N.; AYED, L.; HKIRI, N.; HAMDI, M. Congo red decolorization and detoxification by
Aspergillus niger: removal mechanisms and dye degradation pathway. Biomed Res Int, v. 2028,
2018. DOI: 10.1155/2018/3049686
ASTHANA, A.; SHEARER, C.A. Antagonistic activity of Pseudohalonectria and Ophioceras.
Mycol, v. 82, n. 5, p. 554-561, 1990. DOI: 10.2307/3760044
ATAGANA, H.I.; HAYNES, R.J.; WALLIS, F.M. Fungal bioremediation of creosotecontaminated soil: A laboratory scale bioremediation study using indigenous soil fungi. Water
Air Soil Pollut, v. 172, n. 1, p. 201-219, 2006. DOI: 10.1007/s11270-005-9074-x
AYDIN, S.; KARAÇAY, H.A.; SHAHI, A.; GÖKÇE, S.; INCE, B.; INCE, O. Aerobic and
anaerobic fungal metabolism and Omics insights for increasing polycyclic aromatic hydrocarbons
biodegradation. Fungal Biol Rev, v. 31, n. 2, p. 61-72, 2017. DOI: 10.1016/j.fbr.2016.12.001
AZIZ, A.; AGAMUTHU, P.; ALARIBE, F.O.; FAUZIAH, S.H. Biodegradation of
benzo[a]pyrene by bacterial consortium isolated from mangrove sediment. Environ Technol
(United Kingdom), v. 39, p. 527–535, 2018. DOI: 10.1080/09593330.2017.1305455
AZUBUIKE, C.C.; CHIKERE, C.B.; OKPOKWASILI, G.C. Biorremediação: uma tecnologia
sustentável ecologicamente correta para a gestão ambiental. In: Saxena, G., Bharagava, R. (eds)
Biorremediação de Resíduos Industriais para Segurança Ambiental.Springer:Singapura.2020.
DOI: 10.1007/978-981-13-1891-7_2
BADALYAN, S.M.; INNOCENTI, G.; GARIBYAN, N.G. Antagonistic activity of xylotrophic
mushrooms against pathogenic fungi of cereals in dual culture. Phytopathol Mediterr, v. 41, n.
3, p. 220-225, 2002. Available in< http://digital.casalini.it/10.1400/14513 >
BAGGI, G.; BARBIERI, P.; GALLI, E.; TOLLARI, S. Isolation of a Pseudomonas stutzeri strain
that degrades o-xylene. Applied Environmental Microbiology, v. 53, n. 9, p. 2129–2132, 1987.
DOI: 10.1128/aem.53.9.2129-2132.1987
BAKER, S.E. Aspergillus niger genomics: past, present and into the future. Med Mycol, v. 44, p.
S17-S2, 2006. DOI: 10.1080/13693780600921037
BANKOLE, P.O; SEMPLE K.T.; JEON, B.H.; GOVINDWAR, S.P. Impact of redox-mediators
in the degradation of olsalazine by marine-derived fungus, Aspergillus aculeatus strain bpo2:
182
Response surface methodology, laccase stability and kinetics. Ecotoxicol Environ Saf, v. 208,
p.111742, 2021. DOI: 10.1016/j.ecoenv.2020.111742
BARAKAT, A. O.; QIANB, Y.; KIMB, M.; KENNICUTT, M. C. Chemical characterization of
naturally weathered oil residues in arid terrestrial environment in Al–Alamein, Egypt.
Environment International, v. 27, n. 4, p. 291–310, 2001. DOI: 10.1016/s0160-4120(01)00060-
5
BARBOSA, L.N.; FERREIRA-JR, R.S.; MELLO, L.P.; GARCIA, G.H.; CHECHI, L.J.;
FRACHIN, T.; DE BARROS, L.C.; DE MORAES, G.B.S.; BAGAGLI, E.; FERNANDES-JR,
A.; BARRAVIERA, B.; DELAZARI, S.L. Molecular identification and phylogenetic analysis of
Bothrops insularis bacterial and fungal microbiota. J Toxicol Environ Health, Part A 8, p. 142-
153, 2018. DOI: 10.1080/15287394.2017.1395581
BARGIELA, R.; HERBST, F. A.; MARTÍNEZ‐ MARTÍNEZ, M.; SEIFERT, J.; ROJO, D.;
CAPPELLO, S.; BARBAS, C. Metaproteomics and metabolomics analyses of chronically
petroleum‐ polluted sites reveal the importance of general anaerobic processes uncoupled with
degradation. Proteomics, v. 15, n. 20, p. 3508-3520, 2015. DOI: 10.1002/pmic.201400614
BASU, A.; APTE, S.K.; PHALE, P.S. Preferential utilization of aromatic compounds over
glucose by Pseudomonas putida CSV86. Applied and environmental microbiology, v. 72, n. 3,
p. 2226-2230, 2006. DOI: 10.1128/AEM.72.3.2226-2230.2006
BCC Research - Business Communications Company (2020a). In Report Overview ENV006D.
Global Markets for Environmental Remediation Technologies. Disponível em:<
http://www.bccresearch.com>Acessado em: julho 2021.
BCC Research - Business Communications Company (2021b) In Report Overview BIO030L.
Global Markets for Enzymes in Industrial Applications. Disponível em:<
http://www.bccresearch.com>Acessado em: julho 2021.
BECARELLI, S.; CHICCA, I.; SIRACUSA, G.; LA CHINA, S.; GENTINI, A.; LORENZI, R.;
MUNZ, G.; PETRONI, G.; LEVIN, D. B.; DI GREGORIO, S. Hydrocarbonoclastic
Ascomycetes to enhance co-composting of total petroleum hydrocarbon (TPH) contaminated
dredged sediments and lignocellulosic matrices. New Biotechnol, n. 50, p. 27-36, 2019. DOI:
10.1016/j.nbt.2019.01.006
BEHBUDI, G.; YOUSEFI, K.; SADEGHIPOUR, Y. Microbial Enzymes Based Technologies for
Bioremediation of Pollutions. J environ treat tech, v. 9, n. 2, p. 463-469, 2021. DOI:
10.47277/JETT/9(2)469
BEHNOOD, M.; NASERNEJAD, B.; NIKAZAR, M. Biodegradation of crude oil from saline
waste water using white rot fungus Phanerochaete chrysosporium. Journal of Industrial and
Engineering Chemistry, v. 20, n. 4, p. 1879-1885, 2014. DOI:10.1016/j.jiec.2013.09.007
BENOIT-GELBER, I.; GRUNTJES, T.; VINCK, A.; VAN VELUW, J.G.; WÖSTEN, H.A.;
BOEREN, S.; VERVOORT, J.J.M.; DE VRIES, R.P. Mixed colonies of Aspergillus niger and
183
Aspergillus oryzae cooperatively degrading wheat bran. Fungal Genet Biol, v.102, p. 31-37,
2017. DOI: 10.1016/j.fgb.2017.02.006
BIKTASHEVA, L.; GORDEEV, A.; SELIVANOVSKAYA, S.; GALITSKAYA, P. Di-and
Monorhamnolipids Produced by the Pseudomonas putida PP021 Isolate Significantly Enhance
the Degree of Recovery of Heavy Oil from the Romashkino Oil Field (Tatarstan, Russia).
Processes, v. 10, n. 4, p. 779, 2022. DOI:10.3390/pr10040779
BILAL, M.; IQBAL, H.M.N. Ligninolytic Enzymes Mediated Ligninolysis: An Untapped
Biocatalytic Potential to Deconstruct Lignocellulosic Molecules in a Sustainable Manner. Catal
Lett, v. 150, n. 2, p, 524-543, 2020. DOI: 10.1007/s10562-019-03096-9
BLANEY, L. Magnetite (Fe3O4): Properties, Synthesis, and Applications. Lehigh Review, v.
15, n. 5, p. 33-81, 2007.
BLOOMERG. Bloomberg Innovation Index: Latest Global Rankings. Bloomberg Innovation
Index: Latest Global Rankings. Disponível em:<https://www.bloomberg.com › > Acesso em:
julho 2020.
BLYTH, W.; SHAHSAVARI, E.; MORRISON, P. D.; BALL, A. S. Biosurfactant from red ash
trees enhances the bioremediation of PAH contaminated soil at a former gasworks site. Journal
of environmental management, v. 162, p. 30-36, 2015. DOI: 10.1016/j.jenvman.2015.07.041
BOLL, MATTHIAS; ESTELMANN, SEBASTIAN; HEIDER, JOHANN. Catabolic pathways
and enzymes involved in the anaerobic degradation of monocyclic aromatic compounds In:
BOLL (Ed). Anaerobic utilization of hydrocarbons, oils, and lipids, Springer, p. 85-133, 2020.
DOI:10.1007/978-3-319-50391-2
BONALUMI, J.K.R. Estudos cristalográficos da enzima clorocatecol 1,2-dioxigenase de
Pseudomonas putida. 2010. 122f. Mestrado. Faculdade de Ciências Farmacêuticas de Ribeirão
Preto – Universidade de São Paulo, Ribeirão Preto, 2010.
BONUGLI-SANTOS, R.C.; DOS SANTOS; VASCONCELOS, M.R.; PASSARINI, M.R.;
VIEIRA, G.A.; LOPES, V.C.; MAINARDI, P.H.; SETTE, L.D. Marine-derived fungi: diversity
of enzymes and biotechnological applications. Front Microbiol, v. 6, n. 269, 2015. DOI:
10.3389/fmicb.2015.00269
BOONCHAN, S.; BRITZ, M.L.; STANLEY, G.A. Degradation and mineralization of highmolecular-weight polycyclic aromatic hydrocarbons by defined fungal-bacterial cocultures.
Applied and environmental microbiology, v. 66, n. 3, p. 1007-1019, 2000. DOI:
10.1128/AEM.66.3.1007-1019.2000
BOSSO, L.; SCELZA, R.; TESTA, A.; CRISTINZIO, G.; RAO, M.A. Depletion of
pentachlorophenol contamination in an agricultural soil treated with byssochlamys nivea,
scopulariopsis brumptii and urban waste compost: a laboratory microcosm study. Water Air Soil
Pollut, v. 226, n. 183, p. 1-9, 2015. DOI: 10.1007/s11270-015-2436-0
184
BOURGUIGNON, N.; IRAZUSTA, V.; ISAAC, P.; ESTÉVEZ, C.; MAIZEL, D.; FERRERO,
M. A. Identification of proteins induced by polycyclic aromatic hydrocarbon and proposal of the
phenanthrene catabolic pathway in Amycolatopsis tucumanensis DSM 45259. Ecotoxicology
and Environmental Safety, v. 175, p. 19-28, 2019. DOI: 10.1016/j.ecoenv.2019.02.071
BRADFORD, M. M. A rapid and sensitive method for the quantitation of microgram quantities
of protein utilizing the principle of protein-dye binding. Analytical biochemistry, v. 72, n. 1-2,
p. 248-254, 1976. DOI: 10.1006/abio.1976.9999
BREDA, G. C.; DOBLER, L.; GODOY, K. D.; FREIRE, D. M. G.; MOURA, M. V. H.;
ALMEIDA, R. V. In: ITABAINA-JUNIOR, I.; SOUZA, R. O. M. A. Biocatálise e
biotransformação: fundamentos e aplicações. 4º serie. Rio Grande do Sul: Simplissimo Livros
Ltda. 2017. Cap. 1, p 7-50.
BREZNA, B.; KHAN, A.A.; CERNIGLIA, C. E. Molecular characterization of dioxygenases
from polycyclic aromatic hydrocarbon-degrading Mycobacterium spp. FEMS microbiology
letters, v. 223, n. 2, p. 177-183, 2003. DOI: 10.1016/S0378-1097(03)00328-8
BRUNELLE, J. L.; GREEN, R. One-dimensional SDS-Polyacrylamide Gel Electrophoresis (1D
SDS-PAGE). Laboratory Methods in Enzymology: Protein Part C, Cap 12, v. 541, p. 151–159,
2014.DOI: 10.1016/B978-0-12-420119-4.00012-4
BRZESZCZ, J.; KASZYCKI, P. Aerobic bacteria degrading both n-alkanes and aromatic
hydrocarbons: an undervalued strategy for metabolic diversity and flexibility. Biodegradation, n.
29, p. 359–407, 2018. DOI: 10.1007/s10532-018-9837-x
BUSHNELL, L. D.; HAAS, H. F. The utilization of certain hydrocarbons by microorganisms.
Journal of Bacteriology, v. 41, n. 5, p. 653-673, 1941. DOI: 10.1128/jb.41.5.653-673.1941
BUTTOW, M.E.; STEINDEL, M. Patent application in biotechnology at subclass C12N in Brazil
at the period of 2001 to 2005. Braz Arch Biol Technol, v. 55, n.3, p. 341-348, 2012. DOI:
10.1590/S1516-89132012000300003
CALDERÓN-DELGADO, I.C.; MORA-SOLARTE, D.A.; VELASCO-SANTAMARÍA, Y.M.
Physiological and enzymatic responses of Chlorella vulgaris exposed to produced water and its
potential for bioremediation. Environmental monitoring and assessment, v. 191, n. 6, p. 1-13,
2019. DOI: 10.1007/s10661-019-7519-8
CANO, M.A. Interacción de microorganismos benéficos en plantas: micorrizas, Trichoderma
spp. Y Pseudomonas spp. una revisión. Rev UDCA Act & Div Cient, v. 14, n. 2, p.15-31, 2011
ISSN 0123-4226
CAO, H.; WANG, C.; LIU, H.; JIA, W.; SUN, H. Enzyme activities during Benzo [a] pyrene
degradation by the fungus Lasiodiplodia theobromae isolated from a polluted soil. Scientific
reports, v. 10, n. 1, p. 1-11, 2020. DOI: 10.1038/s41598-020-57692-6
CAPELETTO, M. G.; OMORI, A. T. Promiscuidade enzimática: fundamentos e aplicações. In:
ITABAINA-JUNIOR, I.; SOUZA, R. O. M. A. Biocatálise e biotransformação: fundamentos e
185
aplicações. 4º serie. Rio Grande do Sul: Simplissimo Livros Ltda. 2017. Cap. 3, p. 62-80. ASIN:
B06XCYZ3FN
CARDOSO, F.H.; JOBIM, N.A.; BARROS-NETO, S.R.; MALAN, P.; DORNELLES, F.;
VARGAS, J.I. Lei No. 9,279, de Maio 14, 1996. Disponível
em:<http://www.planalto.gov.br/ccivil_03/Leis/L9279.htm>. Acessado em: Maio 2020.
CARNEVALE GG. 81f. 2015. Análise de interferentes na extração, amplificação e detecção
de M. tuberculosis por reação de PCR em amostras de líquido pleural, escarro e lavado
broncoalveolar. Tese (Doutorado em Ciências) Faculdade de medicina, Universidade de São
Paulo. DOI: 10.11606/T.5.2016.tde-12012016-090128
CARREÑO, D.C.O.; RESTREPO, A.M. Microbial consortia: a biological metaphor applied to
business association in agricultural production chains. Rev Fac Cienc Econ, v. 18, n. 2, p.55-74,
2010. ISSN 0121-6805.
CARVALHO, P. C.; LIMA, D. B.; LEPREVOST, F. V.; SANTOS, M. D.; FISCHER, J. S.;
AQUINO, P. F.; MORESCO, J. J.; YATES III, J. R.; BARBOSA, V. C. Integrated analysis of
shotgun proteomic data with PatternLab for proteomics 4.0. Nature protocols, v. 11, n. 1, p. 102-
117, 2016. DOI: 10.1038/nprot.2015.133
CASE, R.J.; BOUCHER, Y.; DAHLLOF, I.; HOLMSTROM, C.; DOOLITTLE, W.F.;
KJELLEBERG, S. Use of 16S rRNA and rpoB genes as molecular markers for microbial ecology
studies. Appl. Environ. Microbiol. v. 73, p. 278–288, 2007. DOI: 10.1128/AEM.01177-06
CASTELLANI, A. Viability of some pathogenic fungi in distilled water. Journal of Tropical
Medicine and Hygiene, v. 42, p. 225-226, 1939. DOI: 10.1007/BF02054872
CASTILHO, E.W.V. Patentes de Produtos de Origem Biológica. In: PICARELLI, M.F.S.;
ARANHA, M.I. Política de Patentes de Saúde Humana. São Paulo: Atlas, 2001, pp. 70-88.
CAUDURO, G. P.; FALCON, T.; LEAL, A. L.; VALIATI. Differential expression of genes
involved in utilization of benzo (a) pyrene in Burkholderia vietnamiensis G4 strain. In: Frontiers
International Conference on Wastewater Treatment and Modelling. Springer, Cham, p. 68-
72. 2017. DOI: 10.1007/978-3-319-58421-8_11
CBIE- Centro Brasileiro de Infraestrutura. Disponivel em:<https://cbie.com.br/artigos/quaissao-os-maiores-produtores-mundiais-depetroleo/#:~:text=Em%20primeiro%20lugar%20no%20ranking,%2C67%20milh%C3%B5es%20
b%2Fd> Acessado em Maio 2021.
CENIS, J.L. Rapid extraction of fungal DNA for PCR amplification. Nucleic Acids Rese, v. 20,
n. 2380, 1992. DOI: 10.1093/nar/20.9.2380
CERNIGLIA, C. E. Biodegradation of polycyclic aromatic hydrocarbons. Biodegradation, v. 3,
n. 2-3, p. 351–368, 1992. DOI: 10.1007/BF00129093
186
CESKA, M. Enzymatic catalysis in solidified media. Eur J Biochem, v. 22, n. 2, p. 186-192,
1971. DOI: 10.1111/j.1432-1033.1971.tb01531.x
CEVHER-KESKIN, B.; SELÇUKCAN-EROL, Ç.; YÜKSEL, B.; ERTEKIN, Ö.; YILDIZHAN,
Y.; ONARICI, S.; MEMON, A. R. Comparative transcriptome analysis of Zea mays in response
to petroleum hydrocarbon stress. Environmental Science and Pollution Research, v. 25, n. 32,
p. 32660-32674, 2018. DOI: 10.1007/s11356-018-3078-8
CHADEGANI, A.; SALEHI, H.; YUNUS, M. M.; FARHADI, H.; FOOLADI, M.; FARHADI,
M.; ALE EBRAHIM, N. A comparison between two main academic literature collections: Web
of Science and Scopus databases. Asian Social Science, v. 9, p. 18-26, 2013. DOI:
10.5539/ass.v9n5p18
CHAKDAR, H.; THAPA, S.; SRIVASTAVA, A.; SHUKLA, P. Genomic and proteomic insights
into the heavy metal bioremediation by cyanobacteria. Journal of Hazardous Materials, v. 424,
p. 127609, 2022. DOI: 10.1016/j.jhazmat.2021.127609
CHAKRABORTY, C.; DOSS, C.G.; PATRA, B.C.; BANDYOPADHYAY, S. DNA barcoding
to map the microbial communities: current advances and future directions. Appl. Microbiol.
Biotechnol, v. 98, p. 3425–3436, 2014. DOI: 10.1007/s00253-014-5550-9
CHAKRABORTY, S.; GHOSH, M.; CHAKRABORTI, S.; JANA, S.; SEM, K.K.; KOKARE,
C.; ZHANG, L. Biosurfactant produced from Actinomycetes nocardiopsis A17: Characterization
and its biological evaluation. Int J Biol Macromol, v. 79, p. 405–412, 2015. DOI:
10.1016/j.ijbiomac.2015.04.068
CHANTARASIRI, A. Shewanella baltica strain jd0705 isolated from the mangrove wetland soils
in thailand and characterization of its ligninolytic performance. Biodiversitas, v. 22, p. 354–361,
2021. DOI: 10.13057/biodiv/d220143
CHAPMAN, J.; ISMAIL, A.E.; DINU, C.Z. Industrial applications of enzymes: Recent
advances, techniques, and outlooks. Catalysts, v. 8, n. 6, p. 238, 2018. DOI:
10.3390/catal8060238
CHAUHAN, A.; JAIN, R.K. Biodegradation: gaining insight through
proteomics.Biodegradation, v. 21, n. 6, p. 861-879, 2010. DOI: 10.1007/s10532-010-9361-0
CHAUHAN, P.S.; GORADIA, B.; SAXENA, A. Bacterial laccase: recent update on production,
properties and industrial applications. 3 Biotech, v.7, 2017. DOI: 10.1007/s13205-017-0955-7
CHEN, C. Y.; KO, T. P.; LIN, K. F.; LIN, B. L.; HUANG, C. H.; CHIANG, C. H.; HORNG, J. C
NADH/NADPH bi-cofactor-utilizing and thermoactive ketol-acid reductoisomerase from
Sulfolobus acidocaldarius. Scientific reports, v. 8, n. 1, p. 1-12, 2018. DOI:10.1038/s41598-018-
25361-4
CHEN, C.; WANG, Z.; ZHAO, M.; YUAN, B.; YAO, J.; CHEN, J. SAVITSKAYA T. A
fungus–bacterium co-culture synergistically promoted nitrogen removal by enhancing enzyme
187
activity and electron transfer. Sci Total Environ, v. 754, p. 142109, 2021. DOI:
10.1016/j.scitotenv.2020.142109
CHEN, H., B, PC VennDiagram: um pacote para a geração de diagramas de Venn e Euler
altamente personalizáveis em R.BMC Bioinformatics, 12, 35, 2011.DOI: 10.1186/1471-2105-
12-35
CHEN, S.H.; CHEOW, Y.L.; NG, S.L.; TING, A.S.Y. Biodegradation of triphenylmethane dyes
by non-white rot fungus Penicillium simplicissimum: enzymatic and toxicity studies. Int J
Environ Res, v. 13, n. 2, p. 273-282, 2019. DOI: 10.1007/s41742-019-00171-2
CHESHIRE, M. C.; BISH, D. L.; BRASSELL, S. C. Organic Geochemical Composition of the
Georgia Kaolins: Insights Into Formation and Diagenetic Conditions. Clays and Clay Minerals,
v. 60, n 4, p. 420-439, 2012. DOI: 10.1346/CCMN.2012.0600408
CHOMCZYNSKI, P.; SACCHI, N. Single-step method of RNA isolation by acid guanidinium
thiocyanate-phenol-chloroform extraction. Anal Biochem, v. 162, p. 156-159, 1987. DOI:
10.1016/0003-2697(87)90021-2
CHRISTIAN, W. C.; BUTLER, T. M.; GHANNAM, R. B.; WEBB, P. N.; TECHTMANN, S. M.
Phylogeny and diversity of alkane-degrading enzyme gene variants in the laurentian great lakes
and western atlantic. FEMS Microbiology Letters, v. 367, n. 23, p. 182, 2020. DOI:
10.1093/femsle/fnaa182
CNI - Confederação Nacional da Indústria. Portal da Industria. 2017. Disponível
em:<http://perfildaindustria.portaldaindustria.com.br/estado/ba#this>. Acessado em: maio 2020.
COELHO, M. A.Z.; SALGADO, A. M.; RIBEIRO, B.D. Tecnologia enzimática, first ed.
EPUB, Rio de Janeiro. 2008.
CONAMA - Conselho Nacional do Meio Ambiente. Resolução Conama N° 357, de 17 de
Março de 2005. Disponível em: < https://www.icmbio.gov.br/cepsul/images/
stories/legislacao/Resolucao/2005/res_conama_357_2005_classificacao_corpos_agua_rtfcda_altr
d_res_393_2007_397_2008_410_2009_430_2011.pdf > Acesso em: nov 2021.
CORDEIRO, A.F.; MORAES, M.C.; BERTÃO, M.R. Limpando DNA com detergente. Aprend
Cienc, v. 4, p. 52-57, 2017.
CORRÊA. S.; MELLO, M.; ÁVILA, Z.R.; BRAÚNA, L.M.; PÁDUA, R.R.; GOMES, D. Cepas
de Trichoderma spp. para el control biológico de Sclerotium rolfsii Sacc. Fitosanidad, v. 11, n.
1, p. 3-9, 2007.
CORTES-TOLALPA, L.; JIMÉNEZ, D.J.; DE LIMA BROSSI, M.J.; SALLES, J.F.; VAN
ELSAS, J.D. Different inocula produce distinctive microbial consortia with similar lignocellulose
degradation capacity. Appl Microbiol Biotechnol, v. 100, n. 17, p. 7713-7725, 2016. DOI:
10.1007/s00253-016-7516-6
188
CORTES-TOLALPA, L.; SALLES, J.F.; VAN ELSAS, J.D. Bacterial synergism in
lignocellulose biomass degradation–complementary roles of degraders as influenced by
complexity of the carbon source. Front Microbiol, v. 8, p. 1628, 2017. DOI:
10.3389/fmicb.2017.01628
COSTA, M.R.; MOURA, E.F. Manual de extração de DNA. Belém: Embrapa. Amazônia
Oriental. 2001.
CRUZ, G. F. da; MARSAIOLI, A. J. Processos naturais de biodegradação do petróleo em
reservatórios. Química Nova, São Paulo, v. 35, n. 8, 2012. DOI: 10.1590/S0100-
40422012000800024
CUI, J. Q.; LI, Y. Q.; HE, Q. S.; LI, B. Z.; YUAN, Y. J.; WEN, J. P. Effects of different
surfactants on the degradation of petroleum hydrocarbons by mixed‐ bacteria. Journal of
Chemical Technology & Biotechnology, v. 97, n. 1, p. 208-217, 2022. DOI: 10.1002/jctb.6931
CUI, JIE CUI; HUANG, L.; WANG, W.; PING, X.U.; ZANAROLI, G.; TANG, H.
Maximization of the petroleum biodegradation using a synthetic bacterial consortium based on
minimal value algorithm, International Biodeterioration & Biodegradation, v. 150, p. 104964,
2020. DOI: 10.1016/j.ibiod.2020.104964
CUNHA, C.D.; DA, LEITE, S.G.F.; OLIVEIRA, B.E.; D.E.; ROSADO, A.S.; ROSARIO,
M.D.O. Processo de degradação de hidrocarbonetos e processo de produção de
biossurfactante. Brasil patente BR0305960A. 2003.
CURREEM, S. O.; WATT, R. M.; LAU, S. K.; WOO, P. C. Two-dimensional gel electrophoresis
in bacterial proteomics. Protein & cell, v. 3, n. 5, p. 346-363, 2012.DOI: 10.1007/s13238-012-
2034-5
CYBULSKI, Z.; DZIURLA, E.W.A.; KACZOREK, E.W.A.; ANDRZEJ OLSZANOWSKI. The
Influence of Emulsifiers on Hydrocarbon Biodegradation by Pseudomonadacea and Bacillacea
Strains, Spill Science & Technology Bulletin, v. 8, n. 5-6, p. 503–507, 2003. DOI:
10.1016/S1353-2561(03)00068-9
DA FONSECA PIRES, S.; FIALHO JR, L. C.; SILVA, S. O.; MELO, M. N.; DE SOUZA, C. C.;
TAFURI, W. L.; DE ANDRADE, H. M. Identification of virulence factors in Leishmania
infantum strains by a proteomic approach. Journal of Proteome Research, v. 13, n. 4, p. 1860-
1872, 2014. DOI: 10.1021/pr400923g
DA SILVA, S.A.; MORENO, T.F.; CAVALCANTE, L.C.V.; DE AMORIM, E.L.C.; DE
GUSMÃO, C.D. Estudo do processo de biorremediação em solos impactados por derramamento
de óleo. Diversitas Journal, v. 6, n. 1, p. 823-835, 2021.DOI: 10.17648/diversitas-journal-v6i1-
1685
DA SILVA-NETO, B.R; DOS SANTOS, B.K; COSTA, A.F. A Tecnologia Proteômica Como
Estratégia Aplicada Ao Diagnóstico Laboratorial. Científic@-Multidisciplinary Journal, v. 6,
n. 1, p. 04-15, 2019. DOI:10.29247/2358-260X.2019v6i1.p04-15
189
DAI, X.; LV, J.; GUO, S.; WEI, W. Heavy Oil Biodegradation by Mixed Bacterial Consortium of
Biosurfactant-Producing and Heavy Oil-Degrading Bacteria. Polish Journal of Environmental
Studies, v. 30, n. 1, 2021. DOI: 10.15244/pjoes/120769
DANTAS, C. P. Utilização de protótipo de biorreator de imersão temporária na
biodegradação de petróleo em sedimento de manguezal. 2016. 107f. Dissertação (Mestrado
em Geoquímica do Petróleo e Meio Ambiente) – Instituto de Geociências, Universidade Federal
da Bahia, Salvador, 2016. < https://repositorio.ufba.br/bitstream/ri/25762/1/DANTAS,2016.pdf>
DANTAS, C. P.; PINCHEMEL, J. P. D.; JESUS, G. M.; PIMENTEL, M. B.; OLIVEIRA, O. M.
C.; LIMA, D. F. Bioprospection of ligninolytic enzymes from marine origin filamentous fungi.
Anais da Academia Brasileira de Ciências, v. 93, 2021. DOI: 10.1590/0001-3765202120210296
DANTAS, C. P.; MARQUES, I. M.; CONCEIÇÃO, D. P.; LIMA, D. F.; DE OLIVEIRA, O. M.
C. Selection of microorganisms for production of hydrocarbonoclastic consortium. In: XV Latim
american congress on organic geochimistry, 2018, Salvador. Anais [...]. Disponível em:<
http://alago2018.salvador.br/>. Acesso em jun 2019
DAS VIRGENS, G.S.; LUFT, M.C.M.S.; OLAVE, M.E.L.; DE QUEIROZ, L.S. Aspectos
Inovadores das Micro e Pequenas Empresas participantes do Programa Agentes Locais de
Inovação do Ciclo III em Sergipe. Ideias e Inovação, v. 4, n. 3, p. 87, 2018. ISSN: 2316-1299
DE CASTRO REINACH, F. Projeto Genoma. Revista USP, n. 7, p. 33-36, 1990. DOI:
10.11606/issn.2316-9036.v0i7p33-36
DE GONZALO G.; COLPA D.I.; HABIB, M.H.M.; FRAAIJE, M.W. Bacterial enzymes
involved in lignin degradation. Journal of Biotechnol, v. 236, p. 110–119, 2016. DOI:
10.1016/j.jbiotec.2016.08.011
DE LA CRUZ, M. A.; CALVA, E. The complexities of porin genetic regulation. Journal of
molecular microbiology and biotechnology, v. 18, n. 1, p. 24-36, 2010. DOI:
10.1159/000274309
DE OLIVEIRA, O. M.; QUEIROZ, A. F. D. S.; CERQUEIRA, J. R.; SOARES, S. A.; GARCIA,
K. S.; PAVANI FILHO, A.; MOREIRA, Í. T. Environmental disaster in the northeast coast of
Brazil: Forensic geochemistry in the identification of the source of the oily material. Marine
Pollution Bulletin, v. 160, 111597, 2020. DOI: 10.1016/j.marpolbul.2020.111597
DE SALAS, F.; CAÑADAS, R.; SANTIAGO, G.; VIRSEDA-JEREZ, A.; VIND, J.; GENTILI,
P.; MARTÍNEZ, A.T.; GUALLAR, V.; MUÑOZ, I.G.; CAMARERO, S. Structural and
biochemical insights into an engineered high-redox potential laccase overproduced in
Aspergillus. International Journal of Biological Macromolecules, v. 141, p. 855-867, 2019.
DOI: 10.1016/j.ijbiomac.2019.09.052
DE SOUZA, N. A.; RAMAIAH, N.; DAMARE, S.; FURTADO, B.; MOHANDASS, C.; PATIL,
A.; DE LIMA, M. Differential protein expression in Shewanella seohaensis decolorizing azo
dyes. Current Proteomics, v. 16, n. 2, p. 156-164, 2019. DOI:
10.2174/1570164615666180731110845
190
DEBNATH, R.; MISTRY, P.; ROY, P.; ROY, B.; SAHA, T. Partial purification and
characterization of a thermophilic and alkali-stable laccase of Phoma herbarum isolate KU4 with
dye-decolorization efficiency. Preparative Biochemistry & Biotechnology, v. 51, n. 9, p. 1-8,
2021. DOI: 10.1080/10826068.2021.1875235
DELL’ANNO, F.; RASTELLI, E.; SANSONE, C.; BRUNET, C.; IANORA, A.; DELL’ANNO,
A. Bacteria, fungi and microalgae for the bioremediation of marine sediments contaminated by
petroleum hydrocarbons in the omics era. Microorganisms, v. 9, n. 8, p. 1695, 2021. DOI:
10.3390/microrganismos 9081695
DELOZIER, G.; HOLMES, J. Método para melhorar a capacidade de remoção de água de
lodo. Brasil patente BRPI0615415A2. 2005.
DESIDERATO, J.G.; ALVARENGA, D.O.; CONSTANCIO, M.T.; ALVES, L.; VARANI,
A.M. The genome sequence of Dyella jiangningensis FCAV SCS01 from a lignocellulosedecomposing microbial consortium metagenome reveals potential for biotechnological
applications. Genetics and Molecular Biology, v. 41, n. 2, p. 507-513, 2018. DOI:
10.1590/1678-4685-GMB-2017-0155
DIXIT, M.; GUPTA, G. K.; USMANI, Z.; SHARMA, M.; SHUKLA, P. Enhanced
bioremediation of pulp effluents through improved enzymatic treatment strategies: A greener
approach. Renewable and Sustainable Energy Reviews, v. 152, p. 111664, 2021. DOI:
10.1016/j.rser.2021.111664
DURAIRAJ, P.; HUR, J.S.; YUN, H. Versatile biocatalysis of fungal cytochrome P450
monooxygenases. Microbial Cell Factories, v. 15, 2016. DOI: 10.1186/s12934-016-0523-6
DURÓN-CASTELLANOS, A.; ZAZUETA-NOVOA, V.; SILVA-JIMÉNEZ, H.; ALVARADOCAUDILLO, Y.; CABRERA, E. P.; ZAZUETA-SANDOVAL, R. Detection of NAD+-
dependent alcohol dehydrogenase activities in YR-1 strain of Mucor circinelloides, a potential
bioremediator of petroleum contaminated soils. Applied biochemistry and biotechnology, v.
121, n. 1, p. 279-288, 2005.
EBADI, A.; SIMA, N. A. K.; OLAMAEE, M.; HASHEMI, M.; NASRABADI, R. G. Effective
bioremediation of a petroleum-polluted saline soil by a surfactant-producing Pseudomonas
aeruginosa consortium, Journal of Advanced Research, v. 8, n. 6, p. 627-633, 2017. DOI:
10.1016/j.jare.2017.06.008
ELDRIDGE, H. C.; MILLIKEN, A.; FARMER, C.; WENDLAND, N.; COWARD, L.;
GREGORY, D.J.; JOHNSON, C.M. Efficient remediation of 17α-ethinylestradiol by Lentinula
edodes (shiitake) laccase. Biocatalysis and Agricultural Biotechnology,v. 10, p. 64-68, 2017.
DOI: 10.1016/j.bcab.2017.02.004
ELISASHVILI, V.; KACHLISHVILI, E.; KHARDZIANI, T.; AGATHOS, S.N. Effect of
aromatic compounds on the production of laccase and manganese peroxidase by white-rot
basidiomycetes. Journal of Industrial Microbiology and Biotechnology, v. 37, n. 10, p. 1091-
1096, 2010. DOI: 10.1007/s10295-010-0757-y
191
ELSAEED, E.; ENANY, S.; HANORA, A.; FAHMY, N. Comparative metagenomic screening
of aromatic hydrocarbon degradation and secondary metabolite-producing genes in the Red Sea,
the Suez Canal, and the Mediterranean Sea. OMICS: A Journal of Integrative Biology, v. 24,
n. 9, p. 541-550, 2020. DOI: 10.1089/omi.2020.0070
ELSEVIER. Scopus content overage guide. 2017. p. 28. Disponível
em:<https://www.elsevier.com/solutions/scopus/content> Acesso em: dez 2017
EL-SHORA, H.M.; YOUSSEF, M.M.; KHALAF, S.A. 2008. Inducers and inhibitors of laccase
from Penicillium. Biotechnology, v. 7, n. 1, p. 35-42, 2008. DOI: 10.3923/biotech.2008.35.42
ELUFISAN, T.O.; RODRÍGUEZ-LUNA, I.C.; OYEDARA, O.O.; SÁNCHEZ-VARELA, A.;
HERNÁNDEZ-MENDOZA, A.; GONZALEZ, E.D.; PAZ-GONZÁLEZ, A.D.; MUHAMMAD,
K.; RIVERA, G.; VILLALOBOS-LOPEZ, M.A.; GUO, X. The Polycyclic Aromatic
Hydrocarbon (PAH) degradation activities and genome analysis of a novel strain
Stenotrophomonas sp. Pemsol isolated from Mexico. PeerJ, 8, e810, 2020. DOI:
10.7717/peerj.8102
ELUMALAI, P.; PARTHIPAN, P.; NARENKUMAR, J.; ANANDAKUMAR, B.;
MADHAVAN, J.; OH, B. T.; RAJASEKAR, A. Role of thermophilic bacteria (Bacillus and
Geobacillus) on crude oil degradation and biocorrosion in oil reservoir environment. 3 Biotech,
v. 9, n. 3, p. 1-11, 2019. DOI: 10.1007/s13205-019-1604-0
EMIDIO, N. B.; CARPANEZ, A. G.; QUELLIS, L. R.; FARANI, P. S.; VASCONCELOS, E.
G.; FARIA-PINTO, P. Proteômica: uma introdução aos métodos e aplicações. HU Revista, v. 41,
n. 3 e 4, 2015.
EPA, U. S. Method 3510C: Separatory Funnel Liquid-Liquid Extraction. SW-846, Test Methods
for Evaluating Solid Waste, Physical/Chemical Methods. United States Environmental
Protection Agency, Washington, DC, 1996a.
EPA, U. S. Method 3540C. Soxhlet Extraction-Organics.Test Methods for Evaluating Solid
Waste, 1996b.
EPA, U.S. Method 8270 D. Semivolatile organic compound by gas chromatography/mass
spectrometry (GC/MS). 2007
EPA. United States Environmental Protection Agency. Priority Pollutant List, p.2, 2014.
Disponível em<https://www.epa.gov/eg/toxic-and-priority-pollutants-under-clean-water-act>.
Acesso em: fev 2022.
ERICKSON, B. K.; MUELLER, R. S.; VERBERKMOES, N. C.; SHAH, M.; SINGER, S. W.;
THELEN, M. P.; HETTICH, R. L. Computational prediction and experimental validation of
signal peptide cleavages in the extracellular proteome of a natural microbial community. Journal
of proteome research, v. 9, n. 5, p. 2148-2159, 2010. DOI: 10.1021/pr900877a
ESTEVO, M., LOPES, P. F.; DE OLIVEIRA JÚNIOR, J. G. C.; JUNQUEIRA, A. B.; DE
OLIVEIRA SANTOS, A. P.; DA SILVA LIMA, J. A.; CAMPOS-SILVA, J. V. Immediate social
192
and economic impacts of a major oil spill on Brazilian coastal fishing communities. Marine
Pollution Bulletin, v. 164, p. 111984, 2021. DOI: 10.1016/j.marpolbul.2021.111984
EUROPEAN COMMISSION. Council Directive 98/83/EC, Off. J. Eur. Commun, L330, 32.,
1998.
EXPORTGENIUS. Brazil Import Data. Disponível em:<https://www.exportgenius.in/exportimport-trade-data/brazil-import.php.> Acessado em: julho 2021.
EZEKOYE, C.C.; CHIKERE, C.B.; OKPOKWASILI, G.C. Fungal diversity associated with
crude oil-impacted soil undergoing in-situ bioremediation. Sustain Chem Pharm, v. 10, p. 148–
152, 2018. DOI: 10.1016/j.scp.2018.11.003
FANG, X.; LI, Q.; LIN, Y.; LIN, X.; DAI, Y.; GUO, Z.; PAN, D. Screening of a microbial
consortium for selective degradation of lignin from tree trimmings. Bioresour Technol, v. 254,
p. 247–255, 2018. DOI: 10.1016/j.biortech.2018.01.058
FANG, Y.; LIU, J.; KONG, G.; LIU, X.; YANG, Y.; LI, E.; XU, M. Adaptive responses of
Shewanella decolorationis to toxic organic extracellular electron acceptor azo dyes in anaerobic
respiration. Applied and environmental microbiology, v. 85, n. 16, p. e00550-19, 2019. DOI:
10.1128/AEM.00550-19
FELSENSTEIN, J. Confidence limits on philogenies: an approach using the bootstrap.
Evolution, v. 39, n. 4, p. 783-791, 1985. DOI: 10.1111/j.1558-5646.1985.tb00420.x
FERRARONI, M.; WESTPHAL, A.H.; BORSARI, M.; TAMAYO-RAMOS, J.A.; BRIGANTI,
F.; DE GRAAFF, L.H.; VAN BERKEL, W.J. Structure and function of Aspergillus niger laccase
McoG. Biocatalysis, v. 3, n. 1, p. 1-21, 2017. DOI: 10.1515/boca-2017-0001
FORSTALL, R.L. Review Factors Affecting Domestic and International Agricultural Input
price.United States, Congress, House, Committee on Agriculture, 2000, pp.62.
FOX, J.; BOUCHET-VALAT, M. Rcmdr: R Commander. R package version 2.p. 7-1, 2020
FU, J.; MAI, B.; SHENG, G.; ZHANG, G.; WANG, X.; XIAO, X.; TANG, U. W. Persistent
organic pollutants in environment of the Pearl River Delta, China: an overview. Chemosphere,
v. 52, n. 9, p. 1411-1422, 2003. DOI: 10.1016/S0045-6535(03)00477-6
FUENTES, S.; MÉNDEZ, V.; AGUILA, P.; SEEGER, M. Bioremediation of petroleum
hydrocarbons: catabolic genes, microbial communities, and applications. Applied Microbiology
and Biotechnology, v. 98, p. 4781-4794, 2014. DOI: 10.1007/s00253-014-5684-9
FUKUSHIMA, Y.; KIRK, T.K. Laccase component of the Ceriporiopsis subvermispora lignindegrading system. Applied and Environmental Microbiology, v. 61, n. 3, p. 872-876, 1995.
DOI: 10.1128/aem.61.3.872-876.1995
GAGLIANONE, P. C.; TRINDADE, L. A. F. Caracterização Geoquímica dos óleos da Bacia do
Recôncavo. Geochimica Brasiliensis, v. 2, n. 1, p. 15-39, 1988. DOI:10.21715
193
GALILI, T.; O’CALLAGHAN, A.; SIDI, J.; SIEVERT, C. Heatmaply: an R package for creating
interactive cluster heatmaps for online publishing. Bioinformatics, v. 34, n. 9, p. 1600-1602,
2018. DOI: 10.1093/bioinformática/btx657
GALVÃO, T. F.; PANSANI, T. D. S. A.; HARRAD, D. Principais itens para relatar Revisões
sistemáticas e Meta-análises: A recomendação PRISMA. Epidemiologia e Serviços de Saúde,
24, 335-342, 2015. DOI: 10.5123/S1679-49742015000200017
GANESH KUMAR, A.; MATHEW, N.C.; SUJITHA, K.; KIRUBAGARAN, R.; DHARANI, G.
Genome analysis of deep sea piezotolerant Nesiotobacter exalbescens COD22 and toluene
degradation studies under high pressure condition. Scientific reports, v. 9, n. 1, p. 1-14, 2019.
DOI: 10.1038/s41598-019-55115-9
GANGOLA, S.; JOSHI, S.; KUMAR, S.; SHARMA, B.; SHARMA, A. Differential proteomic
analysis under pesticides stress and normal conditions in Bacillus cereus 2D. PLoS One, v. 16,
2021. DOI: 10.1371/journal.pone.0253106
GAO, Y.; DU, J.; BAHAR, M. M.; WANG, H.; SUBASHCHANDRABOSE, S.; DUAN, L;
NAIDU, R. Metagenomics analysis identifies nitrogen metabolic pathway in bioremediation of
diesel contaminated soil. Chemosphere, v. 271, p. 129566, 2021. DOI:
10.1016/j.chemosphere.2021.129566
GARCEZ-JÚNIOR, S.S.; MOREIRA, J.J.S. The patent backlog in Brazil: the right to a
reasonable length of administrative proceedings. Revista Direito GV, v. 13, n. 1, p. 171-203,
2017. DOI: 10.1590/2317-6172201708 .
GARMORY, H. S.; TITBALL, R. W. ATP-binding cassette transporters are targets for the
development of antibacterial vaccines and therapies. Infection and immunity, v. 72, n. 12, p.
6757-6763, 2004. DOI: 10.1128/IAI.72.12.6757-6763.2004
GERBA, I. L.; PEPPER, C. P. Environmental Microbiology: a laboratory manual. 2 ed.
California: Elsevier Academic Press. 2004. 226 p.
GHOSH, I. Ranked: The 100 Most Spoken Languages Around the World. 2020. Disponível em:<
https://www.visualcapitalist.com/100-most-spoken-languages/> Acesso em: maio 2020.
GHOSH, P.; MUKHERJI, S. Modeling growth kinetics and carbazole degradation kinetics of a
Pseudomonas aeruginosa strain isolated from refinery sludge and uptake considerations during
growth on carbazole. Science of The Total Environment, v. 738, p. 140277, 2020. DOI:
10.1016/j.scitotenv.2020.140277
GHOSH, S.; CHOWDHURY, R.; BHATTACHARYA, P. Mixed consortia in bioprocesses: role
of microbial interactions. Applied Microbiology and Biotechnology, v. 100, p. 4283-4295,
2016. DOI: 10.1007/s00253-016-7448-1
GKOREZIS, P.; DAGHIO, M.; FRANZETTI, A.; VAN HAMME, J.D.; SILLEN, W.;
VANGRONSVELD, J. The interaction between plants and bacteria in the remediation of
194
petroleum hydrocarbons: An environmental perspective. Front Microbiol, v. 7, p. 1836, 2016.
DOI: 10.3389/fmicb.2016.01836
GLENN, J.K.; AKILESWARAN, L.; GOLD, M.H. Mn (II) oxidation is the principal function of
the extracellular Mn-peroxidase from Phanerochaete chrysosporium. Arch Biochem Biophys, v.
251, n. 2, p. 688-696, 1986. DOI: 10.1016/0003-9861(86)90378-4
GONCALVES, O.; QUINTELLA, C.M.A.L.T.M.A. Processo microbiológico para captura de
voláteis e produção de biopolímero proteico. Brasil patente BRPI1105932A2, 2013.
GOUVEIA, F. Inovação e patentes: o tempo de amadurecimento no Brasil. Inovação Uniemp. v.
3, n. 3, p. 24-25, 2007. ISSN 1808-2394
GOVARTHANAN, M.; FUZISAWA, S.; HOSOGAI, T.; CHANG, Y.C. Biodegradation of
aliphatic and aromatic hydrocarbons using the filamentous fungus Penicillium sp. CHY-2 and
characterization of its manganese peroxidase activity. RSC advances, v. 7, n. 34, p. 20716-
20723, 2017. DOI: 10.1039/C6RA28687A
GOVERNO DO BRASIL. 2020. Spot na costa do Brasil: Conter, limpar e preservar. Disponível
em< https://brasil.gov.br/manchanolitoral/#numeros> Acessado em: maio 2020.
GRATIVOL, A.D.; MARCHETTI, A.A.; WETLER-TONINI, R.M.; VENANCIO, T.M.;
GATTS, C.E.; THOMPSON, F.L.; REZENDE, C.E. Bacterial interactions and implications for
oil biodegradation process in mangrove sediments. Marine Pollution Bulletin, v. 118, p. 221–
228, 2017. DOI: 10.1016/j.marpolbul.2017.02.052
GRAY, A.L.; GRAY, N.C.C. Processo para descontaminação de solo contendo
contaminantes do tipo DDT. Brasil patente BR 9611238A. 1999.
GRAY, K.; MATHUR, E.J.; RICHARDSON, T.; ROBERTSON, D.; SHORT, J.M. Enzimas
tendo atividade de desalogenase e métodos de uso destas. Brasil Patente BR0115875A. 2000.
GRAY, N.C.C.; MOSER, G.P.; MOSER, L.E. Processo de descontaminação do solo. Brazil
patent BR9712606A. 1999.
GRIFFIN, D.W.; KELLOGG, C.A.; PEAK, K.K.; SHINN, E.A. A rapid and efficient assay for
extracting DNA from fungi. Letters in Applied Microbiology, v. 34, p. 210-214, 2002. DOI:
10.1046/j.1472-765x.2002.01071.x
GU, H.; CHEN, Y.; LIU, X.; WANG, H.; SHEN-TU, J.; WU, L.; XU, J. The effective migration
of Massilia sp. WF1 by Phanerochaete chrysosporium and its phenanthrene biodegradation in
soil. Science of the Total Environment, v. 593, p. 695-703, 2017. DOI:
10.1016/j.scitotenv.2017.03.205
GUENGERICH, F. P.; MACDONALD, T. L. Mechanisms of cytochrome P‐ 450 catalysis. The
FASEB journal, v. 4, n. 8, p. 2453-2459, 1990. DOI: 10.1096/fasebj.4.8.2185971
195
GUERRA, A.B.; OLIVEIRA, J.S.; SILVA-PORTELA, R.C.B.; ARAÚJO, W.; CARLOS, A.C.;
VASCONCELOS, A.T.R.; FREITAS, A.T.; DOMINGOS, Y.S.; DE FARIAS, M.F.;
FERNANDES, G.J.T.; AGNEZ-LIMA, L.F. Metagenome enrichment approach used for
selection of oil-degrading bacteria consortia for drill cutting residue bioremediation.
Environmental Pollution, v. 235, p. 869–880, 2018. DOI: 10.1016/j.envpol.2018.01.014
GUO, H.; SUZUKI, T.; RUBINSTEIN, J. L. Structure of a bacterial ATP synthase. Elife, v. 8, p.
e43128, 2019. DOI: 10.7554/eLife.43128
GUPTA, G.; KUMAR, V.; PAL, A. K. Biodegradation of polycyclic aromatic hydrocarbons by
microbial consortium: a distinctive approach for decontamination of soil. Soil and Sediment
Contamination: An International Journal, v. 25, n. 6, p. 597-623, 2016. DOI:
10.1080/15320383.2016.1190311
GUPTA, GAURI; KUMAR, VIPIN; PAL, A. K. Microbial degradation of high molecular weight
polycyclic aromatic hydrocarbons with emphasis on pyrene. Polycyclic Aromatic Compounds,
v. 39, n. 2, p. 124-138, 2019. DOI: 10.1080/10406638.2017.1293696
GUPTA, S.; SINGH, D. Role of genetically modified microorganisms in heavy metal
bioremediation. In: KUMAR, R.; SHARMA, A.K.; AHLUWALIA, S.S. Advances in
Environmental Biotechnology Springer, Singapore, 2017, pp. 197-214. DOI: 10.1007/978-981-
10-4041-2_12
GURAV, R.; LYU, H.; MA, J.; TANG, J.; LIU, Q.; ZHANG, H. Degradation of n-alkanes and
PAHs from the heavy crude oil using salt-tolerant bacterial consortia and analysis of their
catabolic genes. Environmental Science and Pollution Research, v. 24, n. 12, p. 11392-11403,
2017. DOI: 10.1007/s11356-017-8446-2
HABE, H.; OMORI, T. Genetics of polycyclic aromatic hydrocarbon metabolism in diverse
aerobic bacteria. Bioscience, biotechnology, and biochemistry, v. 67, n. 2, p. 225-243, 2003.
DOI: 10.1271/bbb.67.225
HABIB, S.; JOHARI, W.L.W.; SHUKOR, M.Y.; YASID, N.A. Screening of hydrocarbondegrading bacterial isolates using the redox application of 2, 6-DCPIP. Bioremediat. Sci and
Technol Res, v. 5, n. 2, p. 13-16, 2017. DOI: 10.54987/bstr.v5i2.358
HAGER, J.W. Recent trends in mass spectrometer development. Analytical and Bioanalytical
Chemistry, v. 378, n. 4, p. 845-850, 2004. DOI: 10.1007/s00216-003-2287-1
HALL, T.A. BioEdit: a user-friendly biological sequence alignment editor and analysis program
for Windows 95/98/NT. Nucleic Acids Symposium, v. 41, p. 95-98, 1999. DOI:
10.14601/Phytopathol_Mediterr-14998u1.29
HANKIN, L.; ANAGNOSTAKIS, S. L. The use of solid media for detection of enzyme
production by fungi. Mycologia, v. 67, n. 3, p. 597-607, 1975. DOI:
10.1080/00275514.1975.12019782
196
HANSON K.G.; DESAI, J.D.; DESAI, A.J. A rapid and simple screening technique for potential
crude oil degrading microorganisms. Biotechnology and Technology, v. 7, p. 745-748, 1993.
DOI: 10.1007/BF00152624
HARAYAMA, S.; KOK, M.; NEIDLE, E. L. Functional and evolutionary relationships among
diverse oxygenases. Annual review of microbiology, v. 46, n. 1, p. 565-601, 1992. DOI:
10.1146/annurev.mi.46.100192.003025
HASSANSHAHIAN M.; AMIRINEJAD, N., ASKARINEJAD, B. M. Crude oil pollution and
biodegradation at the Persian Gulf: A comprehensive and review study. Journal of
Environmental Health Science and Engineering, v.18, p.1415–1435, 2020. DOI:
10.1007/s40201-020-00557-x
HEBERT, P. D.; CYWINSKA, A.; BALL, S. L.; DEWAARD, J. R. Biological identifications
through DNA barcodes. Philos. Philosophical Transactions of the Royal Society B, v. 270, p.
313–321, 2003. DOI: 10.1098/rspb.2002.2218
HECHMI, N.; BOSSO, L.; EL-BASSI, L.; SCELZA, R.; TESTA, A.; JEDIDI, N.; RAO, M.A.
Depletion of pentachlorophenol in soil microcosms with Byssochlamys nivea and Scopulariopsis
brumptii as detoxification agents. Chemosphere, v. 165, p. 547-554, 2016. DOI:
10.1016/j.chemosphere.2016.09.062
HEINZ, K.G.H.; DOMINGUEZ, A.C.; SILVA, P.R.; BOTELHO, T.K.R.; TAVARES, L.B.B.
Avaliação da atividade hidrolítica de micro-organismos isolados de resíduo do processamento de
papel. Revista de Estudos Ambientais, v. 16, n. 2, p. 37-47,2015. DOI: 10.7867/1983-
1501.2014v16n2p37-47
HERNÁNDEZ-MARTÍNEZ, R.; GUTIÉRREZ-SÁNCHEZ, G.; BERGMANN, C.W.; LOERACORRAL, O.; ROJO-DOMÍNGUEZ, A.; HUERTA-OCHOA, S.; PRADO-BARRAGÁN, L.A.
Purification and characterization of a thermodynamic stable serine protease from Aspergillus
fumigatus. Process Biochemistry, v. 46, n. 10, p. 2001-2006, 2011. DOI:
10.1016/j.procbio.2011.07.013
HOU, L.; MAJUMDER, E. L. W. Potential for and distribution of enzymatic biodegradation of
polystyrene by environmental microorganisms. Materials, v. 14, n. 3, p. 503, 2021. DOI:
10.3390/ma14030503
HOUBRAKEN, J.; SAMSON, R.A.; FRISVAD, J.C. Byssochlamys: significance of heat
resistance and mycotoxin production. Advances in Food Mycology, v. 571, p. 211-224, 2006.
DOI: 10.1007/0-387-28391-9_14
HU, H.L.; VAN DEN BRINK, J.; GRUBEN, B.S.; WÖSTEN, H.A.B.; GU, J.D.; DE VRIES,
R.P. Improved enzyme production by co-cultivation of Aspergillus niger and Aspergillus oryzae
and with other fungi. International Biodeterioration & Biodegradation, v. 65, n. 1, p 248-252,
2011. DOI: 10.1016/j.ibiod.2010.11.008
197
HUANG, H.; TANG, J.; NIU, Z.; GIESY, J. P. Interactions between electrokinetics and
rhizoremediation on the remediation of crude oil-contaminated soil. Chemosphere, v. 229, p.
418-425, 2019. DOI: 10.1016/j.chemosphere.2019.04.150
HUARTE-BONNET, C.; KUMAR, S.; SAPARRAT, M. C.N.; GIROTI, J.R.; SANTANA, M.;
HALLSWORTH, J.E.; PEDRINI, N. Insights into Hydrocarbon Assimilation by Eurotialean and
Hypocrealean Fungi: Roles for CYP52 and CYP53 Clans of Cytochrome P450 Genes. Applied
biochemistry and biotechnology, v. 184, n. 3, p. 1047-1060, 2018. DOI: 10.1007/s12010-017-
2608-z
HUNDIWALE, J. C.; PATIL, M. S.; PATIL, A. V. Bioremediation: A Potential Tool for
Minimizing Industrial, Agricultural and Environmental Pollution.In: Sharma D.K.(Ed). New
Vistas in Microbial Sciences, Integrated Publications: India. v.1, p. 123, 2021.
IBAMA - Instituto Brasileiro do Meio Ambiente e dos Recursos Naturais Renováveis, 2020.
Manchas de óleo: costa brasileira. Cartilha informativa sobre a trajetória do acidente.
Disponível em:< https://www.ibama.gov.br/phocadownload/
emergenciasambientais/2020/manchasdeoleo/ibama-manchasdeoleo-desmobilizacaocartilha_v2.pdf.> Acesso em: maio 2020.
IBAMA - Instituto Brasileiro do Meio Ambiente e Recursos Naturais Renováveis. Manchas de
Óleo Litoral do Nordeste, 2020. Disponível em:<http://www.ibama.gov.br/manchasdeoleo>
Acesso em: dez 2020.
IMAM, A.; SUMAN, S. K.; KANAUJIA, P. K.; RAY, A. Biological machinery for polycyclic
aromatic hydrocarbons degradation: A review. Bioresource Technology, v. 343, p. 126121,
2022. DOI: 10.1016/j.biortech.2021.126121
INVITROGEN. Qubit® 2.0 Fluorometer: Manual user. Catalog no. Q32866. 2010. Disponível
em :< https://www.mbl.edu/jbpc/files/2014/05/Qubit2_Fluorometer_ UserManual.pdf> Acesso
em: out 2019.
IQBAL, A.; MUKHERJEE, M.; RASHID, J.; KHAN, S. A.; ALI, M. A.; ARSHAD, M.
Development of plant-microbe phytoremediation system for petroleum hydrocarbon degradation:
An insight from alkb gene expression and phytotoxicity analysis. Science of the Total
Environment, v. 671, p. 696-704, 2019. DOI: 10.1016/j.scitotenv.2019.03.331
IRD - Institut de recherche pour le développement, 2020. Disponível em:<https://www.ird.fr/>
Acesso em: maio 2020.
ISAACSON, T.; DAMASCENO, C. M.; SARAVANAN, R. S.; HE, Y., CATALÁ, C.;
SALADIÉ, M.; ROSE, J. K. Sample extraction techniques for enhanced proteomic analysis of
plant tissues. Nature protocols, v. 1, n. 2, p. 769-774, 2006. DOI:10.1038/nprot.2006.102
ITOF – Internacional Tanker Owners Polluiton Federation Limited. Oil Tanker Spill Statistics
2021. 2021. Disponível em:< https://www.itopf.org/knowledge-resources/datastatistics/statistics/> Acesso em: abr 2022.
198
ITOPF - Internacional Tanker Owners Polluiton Federation Limited. Oil Tanker Spill Statistics
2020. Disponível em: < https://www.itopf.org/fileadmin /uploads/ itopf/ data/ Documents/
Company_Lit/Oil_Spill_Stats_publication_2020.pdf> Acessado em: dez 2021.
ITOPF. Internacional Tanker Owners Polluiton Federation Limited. Data Statistics. Disponível
em:< http://www.itopf.com/knowledge-resources/data-statistics/statistics/> Acesso em jan 2018.
IVANOVA, N. V; DEWAARD, J. R; HEBERT, P. D. An inexpensive, automation‐ friendly
protocol for recovering high‐ quality DNA. Molecular ecology notes, v. 6, n. 4, p. 998-1002,
2006. DOI: 10.1111/j.1471-8286.2006.01428.x
IZRAEL-ŽIVKOVIĆ, L.; RIKALOVIĆ, M.; GOJGIĆ-CVIJOVIĆ, G.; KAZAZIĆ, S.; VRVIĆ,
M.; BRČESKI, I.; KARADŽIĆ, I. Cadmium specific proteomic responses of a highly resistant
Pseudomonas aeruginosa san ai. RSC advances, v. 8, n. 19, p. 10549-10560, 2018. DOI:
10.1039/C8RA00371H
JANUSZ, G.; PAWLIK, A.; ŚWIDERSKA-BUREK, U.; POLAK, J.; SULEJ, J.; JAROSZWILKOŁAZKA, A.; PASZCZYŃSKI, A. Laccase properties, physiological functions, and
evolution. International Journal of Molecular Sciences, v. 21, p. 966, 2020. DOI:
10.3390/ijms21030966
JAWHARI, I. F. H. A. Ability of Some Soil Fungi in Biodegradation of Petroleum Hydrocarbon.
Journal of Applied & Environmental Microbiology, v. 2, n. 2, p. 46-52, 2014.
DOI:10.12691/jaem-2-2-3
JCR. Journal Citation Reports. Disponível em:<https://jcr.clarivate.com>. Acesso em: out
2021.
JEFFRIES, M.K.S.; KISS, A.J.; SMITH, A.W.; ORIS, J.T. A comparison of commerciallyavailable automated and manual extraction kits for the isolation of total RNA from small tissue
samples. BMC Biotechnology, v. 94, p.1-14, 2014. DOI:10.1186/s12896-014-0094-8
JESUS, T. B.; SOUZA, S. S.; SANTOS, L. T. S. O.; DE AGUIAR, W. M. Avaliação da
potencialidade de utilização de espécies de macrófitas como acumuladoras de metais pesados.
Revista Virtual Química, n. 7, v. 4, p. 1102-1118, 2015. DOI: 10.5935/1984-6835.20150061
JI, Y.; MAO, G.; WANG, Y.; BARTLAM, M. Structural insights into diversity and n-alkane
biodegradation mechanisms of alkane hydroxylases. Frontiers in Microbiology, v. 4, 2013.
DOI: 10.3389/fmicb.2013.00058
JIANG, G.; YANG, J.; LI, X.; CAO, Y.; LIU, X.; LING, J.; WANG, H.; ZHONG, Z.; ZHU, J.
Alkyl hydroperoxide reductase is important for oxidative stress resistance and symbiosis in
Azorhizobium caulinodans. FEMS microbiology letters, v. 366, n. 3, p. 014, 2019. DOI:
10.1093/femsle/fnz014
JIMÉNEZ, D.J.; CHAIB, DE M.M.; SALLES, J.F. Temporal expression dynamics of plant
biomass-degrading enzymes by a synthetic bacterial consortium growing on sugarcane bagasse.
Frontiers in Microbiology, v. 9, p. 299, 2018. DOI: 10.3389/fmicb.2018.00299
199
JIN, J.; YAO, J.; LIU, W.; ZHANG, Q.; LIU, J. Fluoranthene degradation and binding
mechanism study based on the active-site structure of ring-hydroxylating dioxygenase in
Microbacterium paraoxydans JPM1. Environmental Science and Pollution Research, v. 24, n.
1, p. 363-371, 2017. DOI: 10.1007/s11356-016-7809-4
JSR. Scimago Journal & Country Rank. Disponível em:<https://www.scimagojr.com>.Acesso
em: out 2021.
JUÁREZ-SEGOVIA, K.G.; DÍAZ-DARCÍA, E.J.; MÉNDEZ-LÓPEZ, M.D.; PINA-CANSECO,
M.S.; PÉREZ-SANTIAGO, A.D.; SÁNCHEZ-MEDINA, M.A. Efecto de extractos crudos de ajo
(Allium sativum) sobre el desarrollo in vitro de Aspergillus parasiticus y Aspergillus niger.
Polibotánica, v. 47, p. 99-111, 2019. DOI: 10.18387/polibotanica.47.8
JUHASZ, A.L.; STANLEY, G.A.; BRITZ, M.L. Microbial degradation and detoxification of
high molecular weight polycyclic aromatic hydrocarbons by Stenotrophomonas maltophilia strain
VUN 10,003. Letters in Applied Microbiology, v. 30, p. 396–401, 2000. DOI: 10.1046/j.1472-
765x.2000.00733.x
KADRI, T.; ROUISSI, T.; BRAR, S. K.; CLEDON, M.; SARMA, S.; VERMA, M.
Biodegradation of polycyclic aromatic hydrocarbons (PAHs) by fungal enzymes: a review.
Journal of Environmental Sciences, v. 51, p. 52–74, 2017. DOI: 10.1016/j.jes.2016.08.023
KAFAEI, R.; ARFAEINIA, H.; SAVARI, A.; MAHMOODI, M.; REZAEI, M.; RAYANI, M.;
SORIAL, G.A.A.; FATTAHI, N.; RAMAVANDI, B. Organochlorine pesticides contamination
in agricultural. Chemosphere, v. 240, p. 1-9, 2020. DOI: 10.1016/j.chemosphere.2019.124983
KALOGERAKIS, N.; FAVA, F.; CORVINE, P.F. Bioremediation advances. N Biotech, v. 38, p.
41-42, 2017.
KASHYAP, N.; ROY, K.; MOHOLKAR, V. S. Mechanistic investigation in Co-biodegradation
of phenanthrene and pyrene by Candida tropicalis MTCC 184. Chemical Engineering Journal,
v. 399, p. 125659, 2020. DOI: 10.1016/j.cej.2020.125659
KATHIRESAN, K. Salt-tolerant Microbes in Mangroves: Ecological Role and Bioprospecting
Potential. Research Developments in Saline Agriculture, p. 237–255, 2019. DOI: 10.1007/978-
981-13-5832-6_7
KELLNER, H.; LUIS, P.; PECYNA, M.J.; BARBI, F.; KAPTURSKA, D.; KRÜGER, D.;
HOFRICHTER, M. Widespread occurrence of expressed fungal secretory peroxidases in forest
soils. PLoS One, v. 9, n. 4, p. e95557, 2014. DOI: 10.1371/journal.pone.0095557
KHAN, N. T. Integration of bioinformatics in bioremediation. International Journal of
Biomedical Data Mining, v. 7, p. 1000130, 2018. DOI: 10.4172/2090-4924.1000130
KHEMILI-TALBI, S.; KEBBOUCHE-GANA, S.; AKMOUSSI-TOUMI, S.; ANGAR, Y.;
GANA, M. L. Isolation of an extremely halophilic arhaeon Natrialba sp. C21 able to degrade
aromatic compounds and to produce stable biosurfactant at high salinity. Extremophiles, v. 19,
n. 6, p. 1109-1120, 2015. DOI: 10.1007/s00792-015-0783-9
200
KILLOPS, S. D.; AL-JUBOORI, M. A. H. A. Characterisation of the unresolved complex
mixture (UCM) in the gas chromatograms of biodegraded petroleums. Organic geochemistry, v.
15, n. 2, p. 147-160, 1990. DOI: 10.1016/0146-6380(90)90079-F
KIM, D.; CHAE, J. C.; ZYLSTRA, G. J.; KIM, Y. S.; KIM, S. K.; NAM, M. H.; KIM, E.
Identification of a novel dioxygenase involved in metabolism of o-xylene, toluene, and
ethylbenzene by Rhodococcus sp. strain DK17. Applied and Environmental Microbiology, v.
70, n. 12, p. 7086-7092, 2004. DOI: 10.1128/AEM.70.12.7086-7092.2004
KIM, H.R.; LEE, H.M.; YU, H.C.; JEON, E.; LEE, S.; LI, J.; KIM, D.-H. Biodegradation of
polystyrene by Pseudomonas sp. isolated from the gut of superworms (larvae of Zophobas
atratus). Environmental science & technology, v. 54, n. 11, p. 6987-6996, 2020. DOI:
10.1021/acs.est.0c01495
KIM, T.; LEE, C.; LEE, J.; BAE, H.; NOH, J.; HONG, S.; KHIM, J. S. Best Available Technique
for Remediation of Marine Benthic Communities after Oil Spills: A Mesocosm-Based Integrated
Assessment. Available at SSRN 4056814.2022. DOI: 10.1016/j.jhazmat.2022.128945
KOOLIVAND; KOOLIVAND, A.; SAEEDI, R.; COULON, F.; KUMAR, V.; VILLASEÑOR,
J.; ASGHARI, F.; HESAMPOOR, F. Bioremediation of petroleum hydrocarbons by
vermicomposting process bioaugmentated with indigenous bacterial consortium isolated from
petroleum oily sludge, Ecotoxicology and Environmental Safety, v. 198, p.110645, 2020. DOI:
10.1016/j.ecoenv.2020.110645
KOVALEVA, E.G.; LIPSCOMB, J.D. Crystal structures of Fe2+ dioxygenase superoxo,
alkylperoxo, and bound product intermediates. Science, v. 316, n. 5823, p. 453-457, 2007. DOI:
10.1126/ciência.1134697
KRELING, N. E.; SIMON, V.; FAGUNDES, V. D.; THOMÉ, A.; COLLA, L. M. Improving the
Bioremediation and in situ Production of Biocompounds of a Biodiesel-Contaminated Soil.
Environmental management, v. 68, n. 2, p. 210-225, 2021. DOI:10.1007/s00267-021-01486-7
KRISHNAMOORTHY, R.; JOSE, P.A.; RANJITH, M.; ANANDHAM, R.; SUGANYA, K.;
PRABHAKARAN, J.; THIYAGESHWARI, S.; JOHNSON, J.; GOPAL, N.O.; KUMUTHA, K.
Decolourisation and degradation of azo dyes by mixed fungal culture consisted of
Dichotomomyces cejpii MRCH 1-2 and Phoma tropica MRCH 1-3. Journal of Environmental
Chemical Engineering, v. 6, n. 1, p. 588–595, 2018. DOI: 10.1016/j.jece.2017.12.035
KUHN, R.; BÖLLMANN, J.; KRAHL, K.; BRYANT, I.M.; MARTIENSSEN, M. Comparison
of ten different DNA extraction procedures with respect to their suitability for environmental
samples. Journal of Microbiological Methods, v. 143, p. 78-86, 2017. DOI:
10.1016/j.mimet.2017.10.007
KUMAR, A.; CHANDRA, R. Biodegradation and toxicity reduction of pulp paper mill
wastewater by isolated laccase producing Bacillus cereus AKRC03. Cleaner Engineering and
Technology, v. 4, p. 100193, 2021. DOI: 10.1016/j.clet.2021.100193
201
KUMAR, A.; CHANDRA, R. Ligninolytic enzymes and its mechanisms for degradation of
lignocellulosic waste in environment. Heliyon, v. 6, n. 2, p. e03170, 2020. DOI:
10.1016/j.heliyon.2020.e03170
KUMAR, M.; MUGUNTHAN, M. Evaluation of three DNA extraction methods from fungal
cultures. Medical Journal Armed Forces India, v. 74, p. 333-336, 2018. DOI:
10.1016/j.mjafi.2017.07.009
KUMAR, N.; JEENA, N.; GANGOLA, S.; SINGH, H. Phytoremediation facilitating enzymes:
an enzymatic approach for enhancing remediation process. In: BHATT, P. Smart
Bioremediation Technologies. Academic Press, 2019, p. 289-306. DOI: 10.1016/B978-0-12-
818307-6.00015-9
KUMAR, R.; KAUR, J.; JAIN, S.; KUMAR, A. Optimization of laccase production from
Aspergillus flavus by design of experiment technique: Partial purification and characterization.
Journal of Genetic Engineering and Biotechnology, v. 14, n. 1, p. 125-131, 2016.
KUMAR, S.; STECHER, G.; LI, M.; KNYAZ, C.; TAMURA, K. MEGA X: Molecular
evolutionary genetics analysis across computing platforms. Molecular Biology and Evolution,
v. 35, p.1547–1549, 2018. DOI: 10.1093/molbev/msy096
KUMAR, V.; SINGH, S.; MANHAS, A.; SINGH, J.; SINGLA, S.; KAUR, P.; DATA, S.; NEGI,
P.; KALIA, A. Bioremediation of Petroleum hydrocarbon by using Pseudomonas species isolated
from Petroleum contaminated soil. Oriental Journal of Chemistry, v. 30, n. 4, 2014. DOI:
10.13005/ojc/300436
KUMARI, B.; SINGH, S. N.; SINGH, D. P. Characterization of two biosurfactant producing
strains in crude oil degradation. Process Biochemistry, v. 47, n. 12, p. 2463-2471, 2012. DOI:
10.1016/j.procbio.2012.10.010
KUMARI, S.; REGAR, R.K; MANICKAM, N. Improved polycyclic aromatic hydrocarbon
degradation in a crude oil by individual and a consortium of bacteria. Bioresource technology, v.
254, p. 174-179, 2018. DOI: 10.1016/j.biortech.2018.01.075
KUN, WEI.; HUA, YIN.; HUI, P.; GUINING, L.; ZHI, D. Bioremediation of triphenyl phosphate
by Brevibacillus brevis: Degradation characteristics and role of cytochrome P450
monooxygenase, Science of The Total Environment, v. 627, p. 1389-1395, 2018. DOI:
10.1016/j.scitotenv.2018.02.028
KUREEL, M. K.; GEED, S. R.; RAI, B. N.; SINGH, R. S. Novel investigation of the
performance of continuous packed bed bioreactor (CPBBR) by isolated Bacillus sp. M4 and
proteomic study. Bioresource technology, v. 266, p. 335-342, 2018. DOI:
10.1016/j.biortech.2018.06.064
KURNIATI, E.; ARFARITA, N.; IMAI, T.; HIGUCHI, T.; KANNO, A.; YAMAMOTO, K.;
SEKINE, M. Potential bioremediation of mercury-contaminated substrate using filamentous
fungi isolated from forest soil. Journal of Environmental Sciences, v. 26, n. 6, p. 1223–1231,
2014. DOI: 10.1016/S1001-0742(13)60592-6
202
KUWAHARA, M.; GLENN, J. K.; MORGAN, M. A.; GOLO, M. H. Separation and
characterization of two extracellular H2O2-dependent oxidases from ligninolytic culture of
Phanerochaete chrysosporium. FEBS Letters, v. 169, n. 2, p. 247-250, 1984. DOI:
10.1016/0014-5793(84)80327-0
LAEMMLI, U.K. Cleavage of structural proteins during the assembly of the head of
bacteriophage T4. Nature, v.227, p.680-685, 1970. DOI: 10.1038/227680a0
LAURELL, A.; SICOTTE, P. Composição e processo para o tratamento de um material
contaminado com hidrocarbonetos.Brazil Patent BR9917122A. 1998.
LAWAL, A. T. Polycyclic aromatic hydrocarbons. A review. Cogent Environmental Science,
v. 3, n. 1, p. 1339841, 2017. DOI: 10.1080/23311843.2017.1339841
LEE, N. R.; HWANG, M. O.; JUNG, G. H.; KIM, Y. S.; MIN, K. H. Physical structure and
expression of alkBA encoding Alkane Hydroxylase and Rubredoxin Reductase from
Pseudomonas maltophilia. Biochemical and Biophysical Research Communications, v. 218,
n.1, p.17-21,1996. DOI: 10.1006/bbrc.1996.0004
LEITÃO, A. Potential of Penicillium species in the bioremediation field. International Journal
of Environmental Research and Public Health, v. 6: p. 1393-417, 2009. DOI:
10.3390/ijerph6041393
LI, C.; ZHAO, X.; WANG, A.; HUBER, G.W.; ZHANG, T. Catalytic transformation of lignin
for the production of chemicals and fuels. Chemical Reviews, v. 115, n. 21, p.11559-11624,
2015. DOI: 10.1021/acs.chemrev.5b00155
LI, J.; CHEN, W.; ZHOU, W.; WANG, Y.; DENG, M.; ZHOU, S. Synergistic degradation of
pyrene by Pseudomonas aeruginosa PA06 and Achromobacter sp. AC15 with sodium citrate as
the co-metabolic carbon source. Ecotoxicology, v. 30, n. 7, p. 1487-1498, 2021. DOI:
10.1007/s10646-020-02268-3
LI, Q.; LIU, J.; GADD, G.M. Fungal bioremediation of soil co-contaminated with petroleum
hydrocarbons and toxic metals. Appl Microbiol Biotechnol v.104, n. 21, p. 8999-9008, 2020.
DOI: 10.1007/s00253-020-10854-y
LI, T.; TANG, J.; KARUPPIAH, V.; LI, Y.; XU, N.; CHEN, J. Co-culture of Trichoderma
atroviride SG3403 and Bacillus subtilis 22 improves the production of antifungal secondary
metabolites. Biologic Control v. 140, n.104122, p. 1-8, 2020. DOI:
10.1016/j.biocontrol.2019.104122
LI, X.; HE, W.; DU, M.; ZHENG, J.; DU, X.; LI, Y. 2021. Design of a microbial remediation
inoculation program for petroleum hydrocarbon contaminated sites based on degradation
pathways. Int J Environ Res Public Health v. 18, n. 8794, 2021. DOI: 10.3390/ijerph18168794
LIMA, D.F.; DE OLIVEIRA, O.M.C.; GERIS, R.M.S.; TRIGÜIS, J.A.; QUEIROZ, A.F.S.;
CRUZ, M.J.M.; BARRETO, I. S. Isolation and selection of fungi for degrading saturated
203
hydrocarbons, aromatic hydrocarbons and NSO compounds. Open J Yangtze Oil Gas v. 2, n. 1,
p.10-26. 2017. DOI: 10.4236/ojogas.2017.21002
LIMA, D.F.; DE OLIVEIRA, O.M.C.; QUEIROZ, A.F.S.; OLIVEIRA, E.J.F.; DANTAS, C.P.;
DE MENEZES-NETO, A.A.; PINCHEMEL, J.P.D. Consórcio microbiano misto degradador
de óleos parafínicos da bacia do Recôncavo-Bahia-Brasil. Holder: Universidade Federal da
Bahia. Patente BR 10 2021 002341 4. 2021.
LIMA, D.F.; DE SOUZA QUEIROS, A.F.; DANTAS, C.P.; PALMEIRA, J.B.A.; COSTA, C.R.;
DE OLIVEIRA, O.M.C. The Small-Scale Microbial Processes for Remediation of Sediments
Contaminated with Hydrocarbons. In: KUMAR, V.; KUMAR, M.; PRASAD, R.(ed) Microbial
Action on Hydrocarbons. Springer, Singapore, 255-297, 2018. DOI: 10.1007/978-981-13-1840-
5_11
LIMA, J. M. S. Avaliação do potencial de produção de biossurfactantes por microorganismos endofíticos e epifíticos de macrófitas aquáticas coletadas em afluentes do Rio
Negro contaminados por petróleo. 2016. 119 f. Tese (Doutorado em Biodiversidade e
Biotecnologia) - Universidade Federal do Amazonas. 2016. <
http://tede.ufam.edu.br/handle/tede/5326>
LIMA, J. M. S.; PEREIRA, J. O.; BATISTA, I. H.; NETO, P. D. Q. C.; DOS SANTOS, J. C.;
DE ARAÚJO, S. P.; DE AZEVEDO, J. L. Potential biosurfactant producing endophytic and
epiphytic fungi, isolated from macrophytes in the Negro River in Manaus, Amazonas, Brazil.
African Journal of Biotechnology, v. 15, n. 24, p. 1217-1223, 2016.
DOI:10.5897/AJB2015.15131
LIN, J.E.; CHANG, D.C.; SHEN, G.J.; WANG, H.Y. Correlations among several screening
methods used for identifying wood-decay fungi that can degrade toxic chemicals. Biotechnology
Techniques, v. 5, n. 4, p. 275-280, 1991.
LIU, S.; GUO, C.; DANG, Z.; LIANG, X. Comparative proteomics reveal the mechanism of
Tween80 enhanced phenanthrene biodegradation by Sphingomonas sp. GY2B. Ecotoxicology
and environmental safety, v. 137, p. 256-264, 2017. DOI:10.1016/j.ecoenv.2016.12.015
LIU, X.; MA, Q.; YANG, X. Study on Consistency of Diagnostic Ratios of Different Oils.
Aquatic Procedia, v. 3, p. 231–237, 2015. DOI: 10.1016/j.aqpro.2015.02.216
LUCARINI, A.C.; SILVA, L.A da; BIANCHI, R.A.C. Um sistema para a contagem semiautomática de microorganismos. Revista pesquisa e tecnologia FEI, n. 26, p. 36-40, 2004.
LUCCHESE, A. M.; DE MATTOS, M. C.; FONSECA, T DE S.; DE LEMOS, T. L. G.;
CARVALHO, A. C. L. DE M.; DE OLIVEIRA, M. da C. C. F. Biocatálise e
Biotransformação: Fundamentos e Aplicações. 3° serie. Salto: Editora Schoba. 2012. ASIN:
B06XCYZ3FN
LUCENA-AGUILAR, G.; SÁNCHEZ-LÓPEZ, A.M.; BARBERÁN-ACEITUNO, C.;
CARRILLO-ÁVILA, J.A.; LÓPEZ-GUERRERO, J.A.; AGUILAR-QUESADA, R. DNA Source
204
Selection for Downstream Applications Based on DNA Quality Indicators Analysis. Biopreserv
Biobank v. 14, p. 264-270, 2016. DOI: 10.1089/bio.2015.0064
LUO, J.; DENG, J.; CUI, L.; CHANG, P.; DAI, X.; YANG, C.; ZHANG, X. The potential
assessment of green alga Chlamydomonas reinhardtii CC-503 in the biodegradation of benz (a)
anthracene and the related mechanism analysis. Chemosphere, v. 249, p. 126097, 2020. DOI:
10.1016/j.chemosphere.2020.126097
M’BAREK, H.N.; TAIDI, B.; SMAOUI, T.; BEN AZIZ, M.; MANSOURI, A.; HAJJAJ, H.
Isolation, screening and identification of ligno-cellulolytic fungi from northern central Morocco.
Biotechnologie, Agronomie, Société et Environnement, v. 23, p. 207–217, 2019. DOI:
10.25518/1780-4507.18182
MAAMAR, A.; LUCCHESI, M. E.; DEBAETS, S.; NGUYEN VAN LONG, N.; QUEMENER,
M.; COTON, E.; MATALLAH-BOUTIBA, A. Highlighting the crude oil bioremediation
potential of marine fungi isolated from the Port of Oran (Algeria). Diversity, v. 12, n. 5, p. 196,
2020. DOI:10.3390/d12050196
MACCHI, M.; FESTA, S.; NIETO, E.; IRAZOQUI, J. M.; VEGA-VELA, N. E.; JUNCA, H.;
COPPOTELLI, B. M. Design and evaluation of synthetic bacterial consortia for optimized
phenanthrene degradation through the integration of genomics and shotgun proteomics.
Biotechnology Reports, v. 29, p. e00588, 2021. DOI: 10.1016/j.btre.2021.e00588
MACEDO, M.M. Fundamentos das políticas de inovação pelo lado da demanda no Brasil.In:
RAUEN, A.T. Políticas de inovação pelo lado da demanda no Brasil. Brasília: Ipea. 2017,
pp.48. <
https://www.ipea.gov.br/portal/index.php?option=com_content&view=article&id=30404>
MACHÍN-RAMÍREZ, C.; MORALES, D.; MARTÍNEZ-MORALES, F.; OKOH, A. I.; TREJOHERNÁNDEZ, M. R. Benzo [a] pyrene removal by axenic-and co-cultures of some bacterial and
fungal strains. International Biodeterioration & Biodegradation, v. 64, n. 7, p. 538-544, 2010.
DOI: 10.1016/j.ibiod.2010.05.006
MACIEL, C.D.C.S.; DE SOUZA, M.A.; DE GUSMÃO, N.B.; DE CAMPOS-TAKAKI, G.M.
Produção de enzimas do sistema lignolítico por fungos filamentosos isolados de locais
impactados por petroderivados. Exacta v. 8, n. 3, p. 299-305, 2010. DOI:
10.5585/exacta.v8i3.2269
MACIEL, M.J.M.; RIBEIRO, H.C.T. Industrial and biotechnological applications of ligninolytic
enzymes of the basidiomycota: A review. Electronic Journal of Biotechnology, v. 13, n. 6, p.
14-15, 2010. DOI: 10.2225/vol13-issue6-fulltext-2
MAGALHÃES, K. M.; CARREIRA, R. S.; ROSA FILHO, J. S.; ROCHA, P. P.; SANTANA, F.
M.; YOGUI, G. T. Polycyclic aromatic hydrocarbons (PAHs) in fishery resources affected by the
2019 oil spill in Brazil: Short-term environmental health and seafood safety. Marine Pollution
Bulletin, v. 175, p. 113334, 2022. DOI: 10.1016/j.marpolbul.2022.113334
205
MALLICK, I.; HOSSAIN, T.; SINHA, S.; KUMAR, M.S. Brevibacillus sp. KUMAs2, a
bacterial isolate for possible bioremediation of arsenic in rhizosphere. Ecotoxicology and
Environmental Safety, v. 107, 2014, p. 236-244, 2014. DOI: 10.1016/j.ecoenv.2014.06.007
MANN, J.; MARKHAM, J.L.; PEIRIS, P.; NAIR, N.; SPOONER-HART, R.N.; HOLFORD, P.
Screening and selection of fungi for bioremediation of olive mill wastewater. World J Microbiol
Biotechnol v. 26, n. 3, p. 567-571, 2010. DOI: 10.1007/s11274-009-0200-6
MAO, X.; JIANG, R.; XIAO, W.; YU, J. Use of surfactants for the remediation of contaminated
soils: A review. Journal of Hazardous Materials, v. 285, p. 419–435, 2015. DOI:
10.1016/j.jhazmat.2014.12.009
MARCHUT-MIKOLAJCZYK, O.; KWAPISZ, E.; WIECZOREK, D.; ANTCZAK, T.
Biodegradation of diesel oil hydrocarbons enhanced with Mucor circinelloides enzyme
preparation. International Biodeterioration & Biodegradation. v. 104, p. 142–148, 2015. DOI:
10.1016/j.ibiod.2015.05.008
MARTINS, C.; MARTINS, I.; MARTINS, T.; VARELA, A.; PEREIRA, C. S. A Learning
Journey on Toxico-Proteomics: The Neglected Role of Filamentous Fungi in the Environmental
Mitigation of Pentachlorophenol. In: Tomasini, A.; León-Santiesteban, H. H. Fungal
Bioremediation, CRC: Press, 2019, pp. 287-318. DOI: 10.1201/9781315205984
MAZZIOTTI, M.; HENRY, S.; LAVAL-GILLY, P.; BONNEFOY, A.; FALLA, J. Comparison
of two bacterial DNA extraction methods from non-polluted and polluted soils. Folia
Microbiology v. 63, p. 85-92, 2018. DOI: 10.1007/s12223-017-0530-y
M'BAREK, H.N.; TAIDI, B.; SMAOUI, T.; AZIZ, M.B.; MANSOURI, A.; HAJJAJ, H.
Isolation, screening and identification of ligno-cellulolytic fungi from northern central Morocco.
Biotechnology, Agronomy and Society and Environment, v. 23, n. 4, p. 207-217, 2019. DOI:
10.25518/1780-4507.18182
MECKENSTOCK, R. U.; MORASCH, B.; GRIEBLER, C.; RICHNOW, H. H. Stable isotope
fractionation analysis as a tool to monitor biodegradation in contaminated acquifers. Journal of
Contaminant Hydrology, v. 75, n. 3-4, p. 215-255, 2004. DOI: 10.1016/j.jconhyd.2004.06.003
MEDIĆ, A.; STOJANOVIĆ, K.; IZRAEL-ŽIVKOVIĆ, L.; BEŠKOSKI, V.; LONČAREVIĆ, B.;
KAZAZIĆ, S.; KARADŽIĆ, I.A comprehensive study of conditions of the biodegradation of a
plastic additive 2, 6-di-tert-butylphenol and proteomic changes in the degrader Pseudomonas
aeruginosa san ai. RSC advances, v. 9, n. 41, p. 23696-23710, 2019. DOI:10.1039/c9ra04298a
MEDIĆ, A.; STOJANOVIĆ, K.; IZRAEL-ŽIVKOVIĆ, L.; BEŠKOSKI, V.; LONČAREVIĆ, B.;
KAZAZIĆ, S.; KARADŽIĆ, I. A comprehensive study of conditions of the biodegradation of a
plastic additive 2, 6-di-tert-butylphenol and proteomic changes in the degrader Pseudomonas
aeruginosa san ai. RSC advances, v. 9, n. 41, p. 23696-23710, 2019. DOI:
10.1039/C9RA04298A
206
MENEZES, C.; SANTOS, S.; BORTOLI, R. Mapeamento de tecnologias ambientais: um estudo
sobre patentes verdes no Brasil. Revista de Gestão Ambiental e Sustentabilidade: GeAS, v. 5,
n. 1, p. 110-127, 2016. DOI: 10.5585/geas.v5i1.369
MENTEN, J.O.M.; MINUSSI, C.C.; CASTRO, C.; KIMATI, H. Efeito de alguns fungicidas no
crescimento micelial de Macrophomina phaseolina in vitro. Fitopatologia Brasileira, v. 1, n. 2,
p. 57-66, 1976.
MERRIL, C. R. [36] Gel-staining techniques. Methods in enzymology, v. 182, p. 477-488,
1990. DOI: 10.1016/0076-6879(90)82038-4
MITRA, A. Biology, Genetic Aspects, and Oxidative Stress Response of Streptomyces and
Strategies for Bioremediation of Toxic Metals. In: Das, S. (Ed) Microbial Biodegradation and
Bioremediation. Elsevier, 2014. p. 287-299. DOI: 10.1016/B978-0-12-800021-2.00012-1
MODE, A.W.; ANYIAM, O.A.; AMOBI, J.O.; NWEKE, S.U. Gas chromatographic analysis of
whole oil samples: implications for biodegradation in the Niger Delta. J. Petrol. Journal of
Petroleum Exploration and Production Technology, v. 7, n. 89, 2017. DOI: 10.1007/s13202-
016-0287-x
MOHAPATRA, B.; PHALE, P.S. Microbial degradation of naphthalene and substituted
naphthalenes: Metabolic diversity and genomic insight for bioremediation. Frontiers in
Bioengineering and Biotechnology, v. 9, p. 144, 2021. DOI: 10.3389/fbioe.2021.602445
MOHSIN, U.; LOWRY, M.; DEVI, P.; DIXIT, H.; THAKUR, S. Evaluation of Antibiotic
Resistant and Metal Tolerances Capability of Petroleum (hydrocarbon) Degrading Bacteria. In:
IOP Conference Series: Materials Science and Engineering. IOP Publishing, 2022. p. 012022
DOI: 10.1088/1757-899X/1224/1/012022
MONGEON, P.; PAUL-HUS, A. The journal coverage of Web of Science and Scopus: a
comparative analysis. Scientometrics. v.106, p. 213-228, 2015. DOI: 10.1007/s11192-015-1765-
5
MONTEIRO, V.N.; DO NASCIMENTO, S.R. Industrial applications of enzymatic
biotechnology. Revista processos químicos v.3, n. 5, p. 9-23, 2009. ISSN 1981-8521
MORAES, S. L.; TEIXEIRA, C. E.; MAXIMINIANO, A. M. S. Gerenciamento de áreas
contaminadas. 1 ed. São Paulo: IPT e BNDES, 398 p. 2014. ISBN 978-85-09-00179-7
MORAIS, C. S.; OLIVEIRA JUNIOR, F. O. R.; MASSON, G.; REBELLO, K. M.; SANTOS, L.
O.; BASTOS, N. F. P.; FARIA, R. C. R. Série em biologia celular e molecular: métodos
experimentais no estudo de proteínas. Rio de Janeiro: IOC, 2013. 84 p. v. 1. ISBN 978-85-99974-
04-9
MOREIRA, I.T.A.; OLIVEIRA, O.M.C DE; QUEIROZ, A.F.S.; TRIGUIS, J.A. Bioremediation
system for degradation of petroleum-derived hydrocarbons in sediments and soils. Brazil
Patent BR102012033515A2, 2016.
207
MORÓN-RÍOS, A.; GÓMEZ-CORNELIO, S.; ORTEGA-MORALES, B.O.; DE LA ROSAGARCÍA, S.; PARTIDA-MARTÍNEZ, L.P.; QUINTANA, P.; GONZÁLEZ-GÓMEZ, S.
Interactions between abundant fungal species influence the fungal community assemblage on
limestone. PloS one v. 12, n.12, p. 0188443, 2017. DOI: journal.pone.0188443
MOSER, L.E.; GRAY, N.C.C. Soil decontamination process containing DDT contaminants.
Brazil Patent PI 9611268-9 A2. 1999.
MOSTERTZ, J.; HOCHGRÄFE, F.; JÜRGEN, B.; SCHWEDER, T.; HECKER, M. The role of
thioredoxin TrxA in Bacillus subtilis: a proteomics and transcriptomics approach. Proteomics, v.
8, n. 13, p. 2676-2690, 2008. DOI: 10.1002/pmic.200701015
MOUAFI, F.E.; ABO ELSOUD, M.M.; MOHARAM, M.E. Optimization of biosurfactant
production by Bacillus brevis using response surface methodology. Biotechnol Reports v. 9, p.
31–37, 2016. DOI: 10.1016/j.btre.2015.12.003
MOUHAMADOU, BELLO; FAURE, MATHIEU; SAGE, LUCILE; MARÇAIS, JOHANNA;
SOUARD, FLORENCE; GEREMIA, ROBERTO A. Potential of autochthonous fungal strains
isolated from contaminated soils for degradation of polychlorinated biphenyls. Fungal Biology,
v. 117, n. 4, p. 268–274, 2013. DOI: 10.1016/j.funbio.2013.02.004
MOURA, A.M.M.D.; CAREGNATO, S.E. Produção científica dos pesquisadores brasileiros que
depositaram patentes na área da biotecnologia, no período de 2001 a 2005: colaboração
interinstitucional e interpessoal. Encontros Bibli: Revista Eletrônica de Biblioteconomia e
Ciência da Informação. Florianópolis, Revista Eletrônica de Biblioteconomia e Ciência da
Informação Florianópolis, v. 15, n. 29, p. 84-105, 2010. DOI 10.5007/1518-
2924.2010v15n29p84
MUKHERJEE, P.; ROY, P. Genomic Potential of Stenotrophomonas maltophilia in
Bioremediation with an Assessment of Its Multifaceted Role in Our Environment. Front.
Microbiol. v. 7, n. 967, 2016. DOI: 10.3389/fmicb.2016.00967
MUTHUKAMALAM, S.; SIVAGANGAVATHI, S.; DHRISHYA, D.; SUDHA RANI, S.
Characterization of dioxygenases and biosurfactants produced by crude oil degrading soil
bacteria. Brazilian Journal of Microbiology, v. 48, n. 4, p. 637-647, 2017. DOI:
10.1016/j.bjm.2017.02.007
NATHAN, V.K.; KANTHIMATHINATHAN, S.R.; RANI, M.E.; RATHINASAMY, G.;
KANNAN, N.D. Biobleaching of waste paper using lignolytic enzyme from Fusarium equiseti
VKF2: a mangrove isolate. Cellulose v. 25, n. 7, p. 4179-4192, 2018. DOI: 10.1007/s10570-018-
1834-z
NATRAH, F.M.; BOSSIER, P.; SORGELOOS, P.; YUSOFF, F.M.; DEFOIRDT, T. Significance
of microalgal–bacterial interactions for aquaculture. Reviews in Aquaculture, v. 6, n. 1, p. 48-
61, 2014. DOI: 10.1111/raq.12024
NCBI - National Center for Biotechnology Information. BLAST. Disponível em:
<http://blast.ncbi.nlm.nih.gov/Blast.cgi>. Acesso em: jun 2021
208
NC-IUBMB - Nomenclature Committee of the International Union of Biochemistry and
Molecular Biology. Enzyme Nomenclature. Disponível em: <
http://www.chem.qmul.ac.uk/iubmb/enzyme/>. Acesso em: ago 2017.
NEJLA HECHMI; BOSSO, L.; EL-BASSI, L.; SCELZA, R.; TESTA, A.; JEDIDI, N.; RAO, M.
A. Depletion of pentachlorophenol in soil microcosms with Byssochlamys nivea and
Scopulariopsis brumptii as detoxification agents, Chemosphere, v. 165, p. 547-554, 2016. DOI:
10.1016/j.chemosphere.2016.09.062
NELSON, D. R. The cytochrome P450 homepage. Human Genomics, v. 4, p. 59–65, 2009.
DOI: 10.1186/1479-7364-4-1-59
NIELSEN, C.U; BRODIN, B; STEFFANSEN, B. Efflux transporters. Molecular
Biopharmaceutics, p. 213, 2010. ISBN 978 0 85369 722 0
NIELSEN, K.F.; MOGENSEN, J.M.; JOHANSEN, M.; LARSEN, T.O.; FRISVAD, J.C. Review
of secondary metabolites and mycotoxins from the Aspergillus niger group. Analytical and
Bioanalytical Chemistry, v. 395, n. 5, p. 1225-1242, 2009. DOI: 10.1007/s00216-009-3081-5
NIEVAS, M. L.; COMMENDATORE, M. G.; ESTEVES, J. L.; BUCALÁ, V. Biodegradation
pattern of hydrocarbons from a fuel oil-type complex residue by an emulsifier-producing
microbial consortium. Journal of hazardous materials, v. 154, n. 1-3, p. 96-104, 2008.
DOI:10.1016/j.jhazmat.2007.09.112
NIGAM, V.K.; SHUKLA, P. Enzyme based biosensors for detection of environmental
pollutants-A review. Journal of Microbiology and Biotechnology, v. 25, n. 11, p. 1773-1781,
2015. DOI: 10.4014/jmb.1504.04010
NORGEN BIOTEC CORP. Fungi/Yeast Genomic DNA Isolation Kit Protocol. 2014.
Disponível em:< https://norgenbiotek.com/sites/default/files/resources/Fungi-Yeast-Isolation-KitInsert-PI27300-9-M14.pdf > Acesso em: jan 2019
O’FARRELL, P. H. High Resolution Two-Dimensional Electrophoresis of Protein. The Journal
of Biological Chemistry, v. 250, n. 10, p. 4007-4021, 1975. PMID: 236308
OBAYORI, O. S.; ILORI, M. O.; ADEBUSOYE, S. A.; OYETIBO, G. O.; OMOTAYO, A. E.;
AMUND, O. O. Degradation of hydrocarbons and biosurfactant production by Pseudomonas sp.
strain LP1. World Journal of Microbiology and Biotechnology, v. 25, n. 9, p. 1615-1623,
2009. DOI:10.1007/s11274-009-0053-z
OGOLA, H.J.O.; ASHIDA, H.; ISHIKAWA, T.; SAWA, Y. Explorations and applications of
enzyme-linked bioremediation of synthetic dyes. In: SHIOMI, N. Advances in Bioremediation
of Wastewater and Polluted Soil, p. 111-144, 2015. DOI: 10.5772/60753
OMRANI, R.; SPINI, G.; PUGLISI, E.; SAIDANE, D. Modulation of microbial consortia
enriched from different polluted environments during petroleum biodegradation. Biodegradation
29:187–209, 2018. DOI: 10.1007/s10532-018-9823-3
209
ONTAÑON, O. M.; LANDI, C.; CARLEO, A.; GAGLIARDI, A.; BIANCHI, L.; GONZÁLEZ,
P. S.; BINI, L. What makes A. guillouiae SFC 500-1A able to co-metabolize phenol and Cr (VI)?
A proteomic approach. Journal of hazardous materials, v. 354, p. 215-224, 2018. DOI:
10.1016/j.jhazmat.2018.04.068
ORCID - Open Researcher and Contributor ID. Disponível em: <https://orcid.org/>. Acessado
em: maio 2020.
OVERTON, E. B.; MCFALL, J. A.; MASCARELLA, S.W.; STEELE, C.F.; ANTOINE S.A.;
POLITZER IR, LASETER JL. Identification of petroleum sources after a fire and oil spill.
In:International Oil Spill Conference Proceedings, 1981. Proceedings. v. 1981, n. 1, p. 541-546,
1981.
PACHECO, C.A. The financing of private sector R&D spending in Brazil and the profile of
government incentives for R&D. São Paulo: Revista USP, 2011, pp 89.
PACWA-PLOCINICZAK, M.; PLAZA, G. A.; POLIWODA, A.; PIOTROWSKA-SEGET, Z.
Characterization of hydrocarbon-degrading and biosurfactant-producing Pseudomonas sp. P-1
strain as a potential tool for bioremediation of petroleum-contaminated soil. Environmental
Science and Pollution Research, v. 21, p. 9385-9395, 2014. DOI: 10.1007/s11356-014-2872-1
PADILHA, T. DE M.; SAMPAIO, J.; LONGONI, L.; BENEDUZI, A. Isolamento de linhagens
bacterianas degradadoras de hidrocarbonetos BTEX proveniente do setor petroquímico. Sci
Plena v. 13, n. 9, 2017. DOI: 10.14808/sci.plena.2017.096201
PAL, S.; KUNDU, A.; BANERJEE, T.D.; MOHAPATRA, B.; ROY, A.; MANNA, R.; SAR, P.;
KAZY, S.K. Genome analysis of crude oil degrading Franconibacter pulveris strain DJ34
revealed its genetic basis for hydrocarbon degradation and survival in oil contaminated
environment. Genomics. 2017. DOI: 10.1016/j.ygeno.2017.06.002
PALUDO, G.B.; DE ABREU-LIMA, T.L.; CARREIRO, S.C. Potencial enzimático de leveduras
isoladas de folhas em decomposição. Acta Tecnológica v. 13, n. 2, p. 65-77, 2019. DOI:
10.35818/acta.v13i2.666
PANDA, S.; SHARMA, R.; PARK, W.G. Patent protection, technological efforts, and exports:
An empirical investigation. Journal of Developing Areas, v. 54, n. 2, p. 144-162, 2020. DOI:
10.1353/jda.2020.0021
PARAB, V.; PHADKE, M. Co-biodegradation studies of naphthalene and phenanthrene using
bacterial consortium. Journal of Environmental Science and Health, Part A, v. 55, n. 7, p.
912-924, 2020. DOI: 10.1080/10934529.2020.1754054
PARANHOS, R.D.C.S.; RIBEIRO, N.M. Importância da prospecção tecnológica baseada em
patentes e seus objetivos de busca. Cadernos de Prospecção v. 11, n. 5, p. 1274, 2018.
DOI:10.9771/cp.v12i5.28190
210
PARK, SANG-HO; OH, KYE-HEON; KIM, CHI-KYUNG. Adaptive and cross-protective
responses of Pseudomonas sp. DJ-12 to several aromatics and other stress shocks. Current
microbiology, v. 43, n. 3, p. 176-181, 2001. DOI: 10.1007/s002840010283
PATEL, A. K.; SINGHANIA, R. R.; PANDEY, A. Production, purification, and application of
microbial enzymes. In: Brahmachari, G. Biotechnology of Microbial Enzymes. Academic Press.
2017, pp. 13-41. DOI: 10.1016/B978-0-12-803725-6.00002-9
PATEL, J. G.; KUMAR, J. N.; KUMAR, R. N.; KHAN, S. R. Biodegradation capability and
enzymatic variation of potentially hazardous polycyclic aromatic hydrocarbons—anthracene and
pyrene by Anabaena fertilissima. Polycyclic Aromatic Compounds, v. 36, n. 1, p. 72-87, 2016.
DOI: 10.1080/10406638.2015.1039656
PATEL, K.; PATEL, M. Improving bioremediation process of petroleum wastewater using
biosurfactants producing Stenotrophomonas sp. S1VKR-26 and assessment of phytotoxicity.
Bioresource Technology, 2020. DOI:10.1016/j.biortech.2020.123861
PATEL, K.; PATEL, M. Improving bioremediation process of petroleum wastewater using
biosurfactants producing Stenotrophomonas sp. S1VKR-26 and assessment of phytotoxicity.
Bioresource Technology, 2020. DOI: 10.1016/j.biortech.2020.123861
PBD-101. PROTEIN DATA BANK. Guide to Understanding PDB Data. Molecular Graphics
Programs. Disponível em: < http://pdb101.rcsb.org/learn/guide-to-understanding-pdbdata/molecular-graphics-programs > Acesso em: ago 2017.
PEIXOTO, R. S.; VERMELHO, A. B.; ROSADO, A. S. Petroleum-degrading enzymes:
bioremediation and new prospects. Enzyme Research, v. 1, p 1-7, 2011. DOI:
10.4061/2011/475193
PENG, T.; LUO, A.; KAN, J.; LIANG, L.; HUANG, T.; HU, Z. Identification of a ringhydroxylating dioxygenases capable of anthracene and benz [a] anthracene oxidization from
Rhodococcus sp. P14. Microbial Physiology, v. 28, n. 4, p. 183-189, 2018. DOI:
10.1159/000494384
PEREIRA J.R., N; GOMES, E. DE B.; SORIANO; A. U. Biodegradação de hidrocarbonetos.
1ª Ed. Rio de Janeiro: Escola de Química. v.3. 2009. 76p. ISSN 0103-7374
PEREIRA, L.A.A.; ROBERTO, L.S. Biorremediação enzimática de origem natural com
ampla aplicabilidade, sendo o substrato um meio constituído por extratos de fontes vegetais
oliginosas adicionados a uma mistura de isômeros. Brazil Patent BR 11 2013 000948 9 A2.
2010.
PEREIRA, M.C.; BERTELLI, M.A.; ALEXANDRE-JUNIOR, W.R. Processo de
biorremediação de hidrocarbonetos, xilol, tolueno, naftaleno, acenaftileno, acenafteno,
fluoreno por uma formulação personalizada a partir de enzimas e tensoativos. Brazil Patent
BRPI1106049A2. 2011.
211
PÉREZ-LLANO, Y.; MARTÍNEZ-ÁVILA, L.; BATISTA-GARCÍA, R. A. Omics Approaches:
Impact on Bioremediation Techniques. In: PRASAD, R.; ARANDA, E. (Eds). Approaches in
Bioremediation, Springer: Cham. 2018, pp. 43-59. DOI: 10.1007/978-3-030-02369-0_3
PETERS, K.E.; MOLDOWAN, J.M. The Biomarker Guide: Interpreting Molecular Fossils in
Petroleum and Ancient Sediments. New Jersey, Prentice-Hall Inc. 1993. ISBN-13 : 978-
0130867520
PINSKI, A.; ZUR, J.; HASTEROK, R.; HUPERT-KOCUREK, K. Comparative genomics of
stenotrophomonas maltophilia and stenotrophomonas rhizophila revealed characteristic features
of both species. International Journal of Molecular Sciences, v. 21, p. 1–20, 2020. DOI:
10.3390/ijms21144922
PIRES, G.B.P.; VASCONSELOS, P.G.; AMBROZIM, F.M.; PINHEIRO, I.R. Estudo
comparativo de produção de celulases variando-se as condições de cultivo na fermentação em
estado sólido. Brazilian Journal of Development, v. 6, n. 11, p. 93305-93315, 2020. DOI:
10.34117/bjdv6n11-662
PITCHAIRAMU, C.; VENKATESAN, S.; MUTHUCHELIAN, K. Litter Fungi Diversity in
Piranmalai Forest, Eastern Ghats, Tamilnadu, India. Ethnobotanical Leaflets, v. 12, p. 1–7,
2008.
PIUBELI, F.A. Caracterização da comunidade microbiana em ambientes salinos e suas
possíveis aplicações biotecnológicas. 2011. 240 f. Tese (Doutorado em Ciência de Alimentos) -
Universidade Estadual de Campinas, SP. 2011.
POLITZER, K.; BON, E.D.S. Enzimas Industriais e Especiais. Centro de Gestão e Estudos
Estratégicos, Ciência, Tecnologia e Inovação Rio de Janeiro. 2006. pp. 580.
PRASAD, B.; SURESH, S. Biodegradation of dimethyl phthalate ester using free cells, entrapped
cells of Variovorax sp. BS1 and cell free enzyme extracts: a comparative study. International
Biodeterioration & Biodegradation. v. 97, p. 179–187, 2015. DOI: 10.1016/j.ibiod.2014.11.004
PRENAFETA-BOLDÚ, F.X.; DE HOOG, G.S.; SUMMERBELL, R.C. Fungal Communities in
Hydrocarbon Degradation. Microb Communities Util Hydrocarb Lipids Members,
Metagenomics Ecophysiol, p. 1–36, 2019. DOI: 10.1007/978-3-319-60063-5_8-1
PRICE, M.F.; WILKINSON, I.D.; GENTRY, L.O. Plate method for detection of phospholipase
activity in Candida albicans. Sabouraudia: Journal of Medical and Veterinary Mycology v. 20,
n. 1, p. 7-14, 1982. DOI: 10.1080/00362178285380031
PRIMER SEQUENCES. Disponível em:<https://nature.berkeley.edu/brunslab/tour/
primers.html#18s> Acessado em: jul 2018.
Promega Corporation. 2017. Measuring dsDNA Concentration Using the Quantus®
Fluorometer with the QuantiFluor® dsDNA System. Disponível
em:<https://www.promega.com.br/products/fluorometers-luminometers-multimodereaders/fluorometers/quantus-fluorometer/?catNum=E6150> Acessado em: Jul 2018
212
PROMEGA. Maxwell® 16 LEV simplyRNA Cells Kit and Maxwell® 16 LEV simplyRNA
Tissue Kit. Quick PROTOCOL. 2011-2014. Disponível em:<
https://www.promega.com.br/resources/protocols/technical-manuals/101/maxwell-16-levsimplyrna-cells-kit-and-maxwell-16-lev-simplyrna-tissue-kit-protocol/> Acesso em: abril 2019
PUBCHEN. Explore Chemistry - Quickly find chemical information from authoritative sources.
Disponível em:<https://pubchem.ncbi.nlm.nih.gov/> Acesso em: Jul 2021.
PUENTES-TÉLLEZ, P.E.; FALCAO, S. J. Construction of Effective Minimal Active Microbial
Consortia for Lignocellulose Degradation. Microb Ecol v. 76, p. 419–429, 2018. DOI:
10.1007/s00248-017-1141-5
PUGAZHENDI, ARULAZHAGAN PUGAZHENDI, HUDA QARI, JALAL MOHAMMAD
AL-BADRY BASAHI, JEAN JACQUES GODON, JEYAKUMAR DHAVAMANI. Role of a
halothermophilic bacterial consortium for the biodegradation of PAHs and the treatment of
petroleum wastewater at extreme conditions, International Biodeterioration &
Biodegradation, v. 121, p.44-54, 2017. DOI: 10.1016/j.ibiod.2017.03.015
QUEIROZ, C.; DE SOUZA, A.C.B. Produção de enzimas hidrolíticas por fungos filamentosos
em diferentes substratos sólidos. Brazilian Journal of Development, v. 6, n. 7, p. 51849-51860,
2020. DOI: 10.34117/bjdv6n7-725
QUINTELLA, C.M.A.L.T.M.H.; GONCALVES, O. Process for obtaining biodegradable
products for application in the remediation of soils, waters and impacted environments and
method of operation. Brazil patent BRPI1004444A2. 2012.
R CORE TEAM. R: A language and environment for statistical computing. R Foundation for
Statistical Computing, Vienna, Austria. 2021. Disponível em:< https://www.R-project.org>.
Acesso em: nov 2021.
RADWAN, G., T.S.; RUIZ, O.N. Draft genome sequence of Byssochlamys sp. isolate BYSS01,
a filamentous fungus adapted to the fuel environment. Genome Announc v. 6, n. 10, 2018. DOI:
10.1128/genomeA.00164-18
RAGHUNANDAN, K.; KUMAR, A.; KUMAR, S.; PERMAUL, K.; SINGH, S. Production of
gellan gum, an exopolysaccharide, from biodiesel-derived waste glycerol by sphingomonas spp.
3Biotech v. 8, n.71, 2018. DOI: 10.1007/s13205-018-1096-3
RAMAN, N.M.; ASOKAN, S.; SHOBANA SUNDARI, N.; RAMASAMY, S. Bioremediation of
chromium (VI) by Stenotrophomonas maltophilia isolated from tannery effluent. International
Journal of Environmental Science and Technology, v.15, p. 207–216, 2017. DOI:
10.1007/s13762-017-1378-z
RAMOS, V. O.; SILVA, W. S.; JÚNIOR, W. R. A.; BERTELLI, M. A.; MENDES, R. J. Uso de
Complexo Enzimático no Tratamento de Resíduos em Postos de Gasolina. XII Seminário
Brasileiro de Tecnologia Enzimática. Caxias do Sul. 2016. Anais[...]. Disponível em: <
https://www.ucs.br/site/eventos/enzitec-2016/anais/>
213
RAO, M.A.; SCELZA, R.; ACEVEDO, F.; DIEZ, M.C.; GIANFREDA, L. Enzymes as useful
tools for environmental purposes. Chemosphere v. 107, p. 145-162, 2014. DOI:
10.1016/j.chemosphere.2013.12.059
RAPINI, M.S. Norma de financiamento para investimentos em inovação no Brasil. Belo
Horizonte, Cedeplar. 2013. pp. 497.
RATHER, L.J.; AKHTER, S.; HASSAN, Q.P. Bioremediation: green and sustainable technology
for textile effluent treatment. In: MUTHU, S.S.(Ed). Sustainable innovations in textile
chemistry and dyes. Springer: Singapore, p. 75-91, 2018. DOI: 10.1007/978-981-10-8600-7_4
REIS, N.S.; BRITO, A.R.; PACHECO, C.S.; COSTA, L.C.; GROSS, E.; SANTOS, T.P.;
FRANCO, M. Improvement in menthol extraction of fresh leaves of Mentha arvensis by the
application of multi-enzymatic extract of Aspergillus niger. Chemical Engineering
Communications, v. 206, n. 3, p. 387-397, 2019. DOI: 10.1080/00986445.2018.1494580
REVELLE, W. Procedures for psychological, psychometric, and personality research. Software,
R package version 2.1.9. 2021.
REZENDE, E.D.F.; COUTO, F.A.; BORGES, J.G.; SILVA, D.M.D.; BATISTA, L.R. Potencial
enzimático e toxigênico de fungos isolados de grãos de café. Coffe Science v. 8, n. 1, p. 69-77,
2013.
RISER-ROBERTS, E. Remediation of Petroleum Contaminated Soil: Biological, Physical,
and Chemical Processes, Lewis Publishers, Boca Raton, FL. 1998 ISBN-13: 978-0-367-40044-6
RODRIGUES, E. M. Prospecção de bactérias degradadoras de petróleo e avaliação de
potenciais estratégias de biorremediação para a degradação de hidrocarbonetos na Ilha da
Trindade. 2014. 89 f. Dissertação (Mestrado em microbiologia agrícola) - Universidade Federal
de Viçosa, Viçosa, 2014. <http://locus.ufv.br/handle/123456789/5372>
RODRIGUES, H. C.; CARVALHO, A. L.; SOUZA, C. O.; UMSZA-GUEZ, M. A. Evolution of
World and Brazilian Markets for Enzymes Produced by Solid-state Fermentation: A Patent
Analysis. Recent Patents on Biotechnology, v. 14, n. 2, p. 112-120, 2020. DOI:
10.2174/1872208313666191017143845
RODRIGUES, M. I.; IEMMA, A. F. Planejamento de experimentos e otimização de
processos. Uma estratégia sequencial de planejamentos. 1ª. ed. Campinas, Brasil. Casa do Pão
de Queijo, 2005. p. 326.
RODRIGUES, P.; VENÂNCIO, A.; LIMA, N. Toxic reagents and expensive equipment: are they
really necessary for the extraction of good quality fungal DNA?. Letters in Applied
Microbiology, v. 66, p. 32-37, 2017. DOI: 10.1111/lam.12822
ROJO F. Degradation of alkanes by bacteria. Environmental Microbiology, v.11, n.10, p. 2477-
2490, 2009. DOI: 10.1111/j.1462-2920.2009.01948.x
214
ROMANELLI, A.M.; FU, J., HERRERA, M.L.; WICKES, B.L. A universal DNA extraction and
PCR amplification method for fungal rDNA sequence‐ based identification Mycoses v. 57, p.
612-622, 2014. DOI: 10.1111/myc.12208
ROMEIRO, R. S. Métodos em bacteriologia de plantas. 1.ed. Viçosa: Editora. UFV. 2001. 279
p. v. 1.
RON, E.Z.; ROSENBERG, E. Enhanced bioremediation of oil spills in the sea. Current
Opinion in Biotechnology, v. 27, p. 191-194, 2014. DOI: 10.1016/j.copbio.2014.02.004
RUAS, T. L.; PEREIRA, L. Como construir indicadores de ciência, tecnologia e inovação usando
Web of Science, Derwent World Patent Index, Bibexcel e Pajek. Perspectivas em Ciência da
Informação.v. 19, p. 52-81, 2014. DOI: 10.1590/1981-5344/1678
SALDARRIAGA-HERNÁNDEZ, S.; VELASCO-AYALA, C.; FLORES, P.L.I.; DE JESÚS
ROSTRO-ALANIS, M.; PARRA-SALDIVAR, R.; IQBAL, H.M.; CARRILLO-NIEVES, D.
Biotransformation of lignocellulosic biomass into industrially relevant products with the aid of
fungi-derived lignocellulolytic enzymes. Int J Biol Macromol v. 161, p. 1099-1116, 2020. DOI:
10.1016/j.ijbiomac.2020.06.047
SALEM, S.S.; MOHAMED, A.; EL-GAMAL, M.; TALAT, M.; FOUDA, A. Biological
decolorization and degradation of azo dyes from textile wastewater effluent by Aspergillus niger.
Egyptian Journal of Chemistry, v. 62, n. 10, p. 1799-1813, 2019. DOI:
10.21608/EJCHEM.2019.11720.1747
SAMA, S.G.; BARRÈRE-MANGOTE, C.; BOUYSSIÈRE, B.; GIUSTI, P.; LOBINSKI, R.
Recent trends in element speciation analysis of crude oils and heavy petroleum fractions. Trends
in Analytical Chemistry, v. 104, p. 69-76, 2018. DOI: 10.1016/j.trac.2017.10.014
SAMARAKOON, T.; WANG, S.Y; ALFORD, M.H. Enhancing PCR amplification of DNA
from recalcitrant plant specimens using a trehalose-based additive. Applications in plant
sciences, v. 1, n. 1, 2013. DOI: 10.3732/apps.1200236
SANDRIN, T.R.; MAIER, R.M. Impacto f metals on the biodegradation of organic pollutants.
Environmental Health Perspectives, v.111, p. 1093-1105, 2003. DOI: 10.1289/ehp.5840
SANTOS, A. F. dos; GANDRA, R. M.; OLIVEIRA, S. S. C. de; KNEIPP, L. F.; D'AVILALEVY, C. M.; SODRÉ, C. L.; BRANQUINHA, M. H.; SANTOS, A. L. S. dos; Peptidases em
biotecnologia: produção, aplicações e mercado. In: RESENDE, R. R. (Org) Biotecnologia
Aplicada à Agro & Indústria: fundamentos e aplicações. São Paulo: Blucher, v. 4, p. 381-438,
2016. DOI: 10.5151/9788521211150-11
SANTOS, E. C. L. D.; MIRANDA, D. A. D. R.; SILVA, A. L. D. S.; LÓPEZ, A. M. Q.
Biosurfactant Production by Bacillus strains isolated from sugar cane mill wastewaters. Brazilian
Archives of Biology and Technology, v. 62, 2019. DOI:10.1590/1678-4324-2019170630
SARAVANAN, A.; KUMAR, P. S.; VO, D. V. N.; JEEVANANTHAM, S.; KARISHMA, S.;
YAASHIKAA, P. R. A review on catalytic-enzyme degradation of toxic environmental
215
pollutants: Microbial enzymes. Journal of Hazardous Materials, v. 419, p. 126451, 2021. DOI:
10.1016/j.jhazmat.2021.126451
SCHAMFUß, S.; NEU, T. R.; VAN DER MEER, J. R.; TECON, R.; HARMS, H.; WICK, L. Y.
Impact of mycelia on the accessibility of fluorene to PAH-degrading bacteria. Environmental
science & technology, v. 47, n. 13, p. 6908-6915, 2013. DOI: 10.1021/es304378d
SCHNEIDER, W.D.H.; FONTANA, R.C.; MENDONÇA, S.; DE SIQUEIRA, F.G.; DILLON,
A.J.P.; CAMASSOLA, M. High level production of laccases and peroxidases from the newly
isolated white-rot basidiomycete Marasmiellus palmivorus VE111 in a stirred-tank bioreactor in
response to different carbon and nitrogen sources. Process Biochemistry, v. 69, p. 1-11, 2018.
DOI: 10.1016/j.procbio.2018.03.005
SCHOCH, C.L.; SEIFERT, A.; HUHNDORF, S.; ROBERT, V.; SPOUGE, J.; CONSORTIUM,
F.B. Nuclear ribosomal internal transcribed spacer (ITS) region as a universal DNA barcode
marker for Fungi. Proceedings of the National Academy of Sciences, v. 109, n. 16, p. 6241-
6246. DOI: 10.1073/pnas.1117018109
SEMANA, P.; POWLOWSKI, J. Four aromatic intradiol ring cleavage dioxygenases from
aspergillus niger. Applied and Environmental Microbiology Journal, v. 85, n. 23, p. e01786-
19, 2019. DOI: 10.1128/AEM.01786-19
SEO, JONG-SU; KEUM, YOUNG-SOO; LI, QING X. Bacterial degradation of aromatic
compounds. International journal of environmental research and public health, v. 6, n. 1, p.
278-309, 2009. DOI: 10.3390/ijerph6010278
SHAH, S.; DAMARE, S. Cellular response of Brevibacterium casei# NIOSBA88 to arsenic and
chromium—a proteomic approach. Brazilian Journal of Microbiology, v. 51, n. 4, p. 1885-
1895, 2020. DOI: 10.1007/s42770-020-00353-7
SHARMA, A.; MUTHUPRIYA, M.; RAJ, R.; SHAMEEN, Z.; SM, V.; NIYONZIMA, F.N.;
MORE, S.S. Properties of Laccase of Bacillus marisflavi Strain BB4 and its Synthetic Dyes
Decolorization Analysis. Proceedings of the National Academy of Sciences, India Section B,
v. 91, p. 477–485, 2021. DOI: 10.1007/s40011-021-01235-0
SHARMA, B.; DANGI, A.K.; SHUKLA, P. Contemporary enzyme based technologies for
bioremediation: a review. Journal of Environmental Management, v. 210, p. 10-22, 2018.
DOI: 10.1016/j.jenvman.2017.12.075
SHARMA, B.; SHUKLA, P. Designing synthetic microbial communities for effectual
bioremediation: A review. Biocatalysis and Biotransformation, v. 38, n. 6, p. 405-414, 2020.
DOI: 10.1080/10242422.2020.1813727
SHARMA, P. Microbial communication during bioremediation of polyaromatic hydrocarbons.
Systems Microbiology and Biomanufacturing, p. 1-15, 2022. DOI: 10.1007/s43393-021-
00072-6
216
SHARMA, S., P.; NGO, H. H.; KHANAL, S.; LARROCHE, C.; KIM, S. H.; PANDEY, A.
Efficiency of transporter genes and proteins in hyperaccumulator plants for metals tolerance in
wastewater treatment: Sustainable technique for metal detoxification. Environmental
Technology & Innovation, v. 23, p. 101725, 2021. DOI: 10.1016/j.eti.2021.101725
SHEELA, T.; SADASIVAM, S.K. Dye degradation potential and its degradative enzymes
synthesis of bacillus cereus skb12 isolated from a textile industrial effluent. Journal of Applied
Biology and Biotechnology, v. 8, p. 42–46, 2020. DOI: 10.7324/JABB.2020.80308
SHELP, B. J.; BOWN, A. W.; ZAREI, A. 4-Aminobutyrate (GABA): a metabolite and signal
with practical significance. Botany, v. 95, n. 11, p. 1015-1032, 2017. DOI:10.1139/cjb-2017-
0135
SHI, J.; WU, Y.; ZHANG, S.; TIAN, Y.; YANG, D.; JIANG, Z. Bioinspired construction of
multi-enzyme catalytic systems. Chemical Society Reviews, v. 47, n. 12, p. 4295-4313, 2018.
DOI: 10.1039/C7CS00914C
SHIN, W.; LEE, K.; PARK, G.T. When an Importer's Protection of IPR Interacts with an
Exporter's Level of Technology: Comparing the Impacts on the Exports of the North and South.
The World Economy, v. 39, n. 6, p. 772-802, 2016. DOI: 10.1111/twec.12338
SHUONA, C.; HUA, Y.; JINGJING, C.; HUI, P.; ZHI, D. Physiology and bioprocess of single
cell of Stenotrophomonas maltophilia in bioremediation of co-existed benzo [a] pyrene and
copper. Journal of hazardous materials, v. 321, p. 9-17, 2017. DOI:
10.1016/j.jhazmat.2016.09.002
SICILIANO, S. D.; FORTIN, N.; MIHOC, A.; WISSE, G.; LABELLE, S.; BEAUMIER, D.;
GREER, C. W. Selection of specific endophytic bacterial genotypes by plants in response to soil
contamination. Applied and environmental microbiology, v. 67, n. 6, p. 2469-2475, 2001.
DOI: 10.1128/AEM.67.6.2469-2475.2001
SIDWABA, U.; NTSHONGONTSHI, N.; FELENI, U.; WILSON, L.; WARYO, T.; IWUOHA,
E.I. Manganese Peroxidase-Based Electro-Oxidation of Bisphenol A at Hydrogellic PolyanilineTitania Nanocomposite-Modified Glassy Carbon Electrode. Electrocatalysis , v. 10, n. 4, p. 323-
331, 2019. DOI: 10.1007/s12678-019-0510-x
SILVA, A. S. da. Caracterização de enzimas bacterianas de degradação de hidrocarbonetos
aromáticos policíclicos. 2008. 85f. Dissertação (Mestrado em ciência do solo) - Universidade
Federal do Rio Grande do Sul. 2008. < http://hdl.handle.net/10183/32432>
SILVA, C.M.M.S.; MELO, I.S.; FAY, E.F. Biotransformação de agrotóxicos e biorremediação.
In: SILVA, C.M.M.S.; MELO, I.S.; FAY, E.F. Agrotóxicos e Ambiente, São Paulo: Embrapa,
2007, p.145 – 192.
SILVA, K.D. Patentes acadêmicas no Brasil: um novo panorama da contribuição das
universidades na trajetória do PCT. 2014. 70f. Dissertação (Mestrado em Economia e Gestão
de Ciência, Tecnologia e Inovação) - Instituto Superior de Economia e Gestão: Lisbon School of
Economics & Management. 2014. < http://hdl.handle.net/10400.5/6535>
217
SILVA, T. R.; LOPES, S. R.; SPÖRL, G.; KNOPPERS, B. A.; AZEVEDO, D. A. Evaluation of
anthropogenic inputs of hydrocarbons in sediment cores from a tropical Brazilian estuarine
system. Microchemical Journal, v. 109, p. 178-188, 2013. DOI: 10.1016/j.microc.2012.02.012
SILVA-JUNIOR, J.F.; LÉD, A.S. Botânica. In: SILVA-JUNIOR, J.F.; LÉD, A.S. A cultura da
mangaba. Embrapa: Aracaju, p 25-33, 2006.
SINGH, A.; KUMAR, V.; SRIVASTAVA, J.N. Assessment of Bioremediation of Oil and Phenol
Contents in Refinery Waste Water via Bacterial Consortium. Journal of Petroleum &
Environmental Biotechnology, v. 4, p. 145., 2013. DOI: 10.4172/2157-7463.1000145
SISINNI, L.; CENDRON, L.; FAVARO, G.; ZANOTTI, G. Helicobacter pylori acidic stress
response factor HP1286 is a YceI homolog with new binding specificity. The FEBS Journal, v.
277, n. 8, p. 1896-1905, 2010. DOI: 10.1111/j.1742-4658.2010.07612.x
SIVASUBRAMANIAN, S.; NAMASIVAYAM, S.K.R. Phenol degradation studies using
microbial consortium isolated from environmental sources. Journal of Environmental
Chemical Engineering, v. 3, p. 243–252, 2015. DOI: 10.1016/j.jece.2014.12.014
SMIT, E.; LEEFLANG, P.; GLANDORG, B.; ELSAS, J.D.V.; WERNARS, K. Analysis of
fungal diversity in the wheat rhizosphere by sequencing of cloned PCR-amplified genes encoding
18S rRNA and temperature gradient gel electrophoresis. Applied and Environmental
Microbiology Journal, v. 65, p. 2614–2621, 1999. DOI: 10.1128/AEM.65.6.2614-2621.1999
SMULEK, W.; CYBULSKI, Z.; GUZIK, U.; JESIONOWSKI, T.; KACZOREK, E. Three
chlorotoluene-degrading bacterial strains: Differences in biodegradation potential and cell surface
properties. Chemosphere, v. 237, p. 124452, 2019. DOI: 10.1016/j.chemosphere.2019.124452
SNEATH, P.H.A.; SOKAL, R.R. 1973. Numerical taxonomy. Freeman, São Francisco.
SOARES, M.; TEIXEIRA, C. E. P.; BEZERRA, L. E. A.; PAIVA, S. V.; TAVARES, T. C. L.;
GARCIA, T. M.; CAVALCANTE, R. M. Oil spill in South Atlantic (Brazil): environmental and
governmental disaster. Marine Policy, v. 115, p. 103879, 2020. DOI:
10.1016/j.marpol.2020.103879
SOARES, E. C.; BISPO, M. D.; VASCONCELOS, V. C.; SOLETTI, J. I.; CARVALHO, S. H.
V.; DE OLIVEIRA, M. J.; SANTOS, J. C. C. Oil impact on the environment and aquatic
organisms on the coasts of the states of Alagoas and Sergipe, Brazil-A preliminary evaluation.
Marine Pollution Bulletin, v. 171, p. 112723, 2021. DOI: 10.1016/j.marpolbul.2021.112723
SOKOLO, R.S.; ATAGANA, H.I.; AKANI, N.P. Molecular Characterisation of Culturable
Aerobic Hydrocarbon Utilising Bacteria and Fungi in Oil Polluted Soil at Ebubu-Ejama
Community, Eleme, Rivers State, Nigeria. Journal of Advances in Biology & Biotechnology,
18(4), 1-7, 2018. DOI: 10.9734/JABB/2018/43507
SONG, H.; ZHOU, L.; ZANG, L.; GOA, B.; WEI, D.; SHEN, Y.; WANG, R.; MIDZAK, C.;
JIANG, Z. Construction of a whole-cell catalyst displaying a fungal lipase for effective treatment
218
of oily wastewaters. Journal of Molecular Catalysis B: Enzymatic, v. 71, p. 166–170, 2011.
DOI: 10.1016/j.molcatb.2011.04.015
SOUZA, M. A.; GUSMÃO, N. B.; TAKAKI, G. M. C. Produção de enzimas do sistema
lignolítico por fungos filamentosos isolados de locais impactados por petroderivados. Exacta,
São Paulo, v. 8, n. 3, p. 299-305, 2010. DOI: 10.5585/exacta.v8i3.2269
STAMFORD, T.L.M.; ARAÚJO, J.M.; STAMFORD, N.P. Atividade enzimática de
microrganismos isolados do jacatupé (Pachyrhizus erosus L. Urban). Food science and
technology, v. 18, n. 4, p. 382-385, 1998. DOI: 10.1590/S0101-20611998000400004
STEINHAUER, M. S.; BOEHM, P. D. The composition and distribution of satured and aromatic
hydrocarbons in nearshore sediments, river sediments, and coastal peat of Alaska Beaufort Sea:
implications for detecting anthropogenic hydrocarbons input. Marine Environmental Research,
v. 33, p. 223-253, 1992. DOI: 10.1016/0141-1136(92)90140-H
SUBASHCHANDRABOSE, S.R; RAMAKRISHNAN, B.; MEGHARAJ, M.;
VENKATESWARLU, K.; NAIDU, R. Consortia of cyanobacteria/microalgae and bacteria:
biotechnological potential. Biotechnology Advances, v. 29, n. 6, p.896-907, 2011. DOI:
10.1016/j.biotechadv.2011.07.009
SUN, K.; LI, S.; SI, Y.; HUANG, Q. Advances in laccase-triggered anabolism for biotechnology
applications. Critical Reviews in Biotechnology, v. 41, n. 7, p. 1-25, 2021. DOI:
10.1080/07388551.2021.1895053
SUN, R.; JIN, J.; SUN, G.; LIU, Y.; LIU, Z. Screening and degrading characteristics and
community structure of a high molecular weight polycyclic aromatic hydrocarbon-degrading
bacterial consortium from contaminated soil. Journal of Environmental Sciences, v. 22, n. 10,
p. 1576-1585, 2010. DOI: 10.1016/s1001-0742(09)60292-8
SURENDRA, S.V.; MAHALINGAM, B.L.; VELAN M. Degradation of monoaromatics by
Bacillus pumilus MVSV3. Brazilian Archives of Biology and Technology, v. 60, 2017. DOI:
10.1590/1678-4324-2017160319
SYLVESTRE, T. F; CAVALCANTE, R. S.; DA SILVA, J. F.; PANIAGO, A. M. M.; WEBER,
S. S.; PAULETTI, B. A.; DE CARVALHO, L. R.; DOS SANTOS, L. D.; MENDES, R. P.
Ceruloplasmin, transferrin and apolipoprotein A-II play important role in treatment's follow-up of
paracoccidioidomycosis patients. PloS one, v. 13, n. 10, p. e0206051, 2018. DOI:
10.1371/journal.pone.0206051
SZKLARZ, G.; ANTIBUS, R. K.; SINSABAUGH, R. L.; LINKINS, A. E. Production of
phenoloxidases and peroxidases by wood-rotting fungi. Mycologia, v. 81, p. 234-240, 1989.
DOI: 10.2307/3759705
SZOMSZOR, M. The Web of Science Author Impact Beamplots: A new tool for responsible
research evaluation. Disponível em: <https://clarivate.com/blog/the-web-of-science-authorimpact-beamplots-a-new-tool-for-responsible-research-evaluation/> Acesso em: mar 2021.
219
TABATABAEI, M.; ZAKARIA, M.R.; RAHIM, R.A.; ABDULLAH, N.; WRIGHT, A.D.G.;
SHIRAI, Y.; SHAMSARA, M.; SAKAI, K.; HASSAN, M.A. Comparative study of methods for
extraction and purification of environmental DNA from high-strength wastewater sludge.
African Journal of Biotechnology, v. 9, p. 4926-4937, 2010.
TANG, W.H.; SHILOV, I.V.; SEYMOUR, S.L. Nonlinear fitting method for determining local
false discovery rates from decoy database searches. J. Proteome Research, v. 7, n. 9, p. 3661–
3667, 2008. DOI: 10.1021/pr070492f
TAPWAL, A.; THAKUR, G.; CHANDRA, S.; TYAGI, A. In-vitro evaluation of Trichoderma
species against seed borne pathogens. International Journal of Biological and Chemical
Sciences, v.1, n.10, p. 14-19, 2015. ISSN: 2349 - 2724
TAZAKI, K.; FUKUYAMA, A.; TAZAKI, F.; SHINTAKU, Y.; NAKAMURA, K.;
TAKEHARA, T.; SHIMADA, K. Twenty Years after the Nakhodka Oil Spill Accident in the Sea
of Japan, How Has Contamination Changed?. Minerals, v. 8, n. 5, p. 178, 2018. DOI:
10.3390/min8050178
THATOI, H.; DAS, S.; MISHRA, J.; RATH, B.P.; DAS N. Bacterial chromate reductase, a
potential enzyme for bioremediation of hexavalent chromium: a review. Journal of
Environmental Management, v.146, p. 383-399, 2014. DOI: 10.1016/j.jenvman.2014.07.014
THEERACHAT, M.; GUIEYSSE, D.; MOREL, S.; REMAUD-SIMÉON, M.;
CHULALAKSANANUKUL, W. Laccases from marine organisms and their applications in the
biodegradation of toxic and environmental pollutants: a review. Applied Biochemistry and
Biotechnology, v. 187, n. 2, p. 583-611, 2019. DOI: 10.1007/s12010-018-2829-9
THERMO SCIENTIFIC. 2012. Nano Drop Lite: User guide. Disponível em:
<https://www.thermofisher.com/order/catalog/product/ND-LITE-PR> Acessado em: Jul 2018.
TIWARI, B.; VERMA, E.; CHAKRABORTY, S.; SRIVASTAVA, A. K.; MISHRA, A. K.
Tolerance strategies in cyanobacterium Fischerella sp. under pesticide stress and possible role of
a carbohydrate-binding protein in the metabolism of methyl parathion (MP). International
Biodeterioration & Biodegradation, v. 127, p. 217-226, 2018. DOI:
10.1016/j.ibiod.2017.11.025
TIWARI, J.; NAOGHARE, P.; SIVANESAN, S.; BAFANA, A. Biodegradation and
detoxification of chloronitroaromatic pollutant by Cupriavidus. Bioresource technology, v. 223,
p. 184-191, 2017. DOI: 10.1016/j.biortech.2016.10.043
TOLOSA, I., DE MORA, S.; SHEIKHOLESLAMI, M. R.; VILLENEUVE, J. P.; BARTOCCI,
J.; CATTINI, C. Aliphatic and aromatic hydrocarbons in coastal Caspian Sea sediments. Marine
Pollution Bulletin, v. 48, n. 1-2, p. 44-60, 2004. DOI: 10.1016/S0025-326X(03)00255-8
TOMÁS‐ GALLARDO, L.; CANOSA, I.; SANTERO, E.; CAMAFEITA, E.; CALVO, E.;
LÓPEZ, J. A.; FLORIANO, B. Proteomic and transcriptional characterization of aromatic
degradation pathways in Rhodoccocus sp. strain TFB. Proteomics, v. 6, n. S1, p. S119-S132,
2006. DOI: 10.1002/pmic.200500422
220
TREPTOW, J. P. 2002 f. (2018). Estudo do metabolismo de polietileno: desvendando as
estratégias metabólicas microbianas envolvidas na biodegradação de plásticos. (Tese de
doutorado em Biologia Molecular), Universidade de Brasília.
TRIPATHY, S.K; MAHARANA, M.; ITHAPE, D.M.; LENKA, D.; MISHRA, D.; PRUSTI, A.;
SWAIN, D.; MOHANTY, M.R.; RAJ, K.R.R. Exploring rapid and efficient protocol for isolation
of fungal DNA. International Journal Of Current Microbiology And Applied Sciences, v. 6,
p 951-960, 2017. DOI: 10.20546/ijcmas.2017.603.113
TSAI, Y.-F.; LUO, W.-I.; CHANG, J.-L.; CHANG, C.-W.; CHUANG, H.-C.; RAMU, R.; WEI,
G.-T.; ZEN, J.-M.; YU, SSF. Electrochemical hydroxylation of C3–C12 n-alkanes by
recombinant alkane hydroxylase (AlkB) and rubredoxin-2 (AlkG) from Pseudomonas putida
GPo1. Scientific reports, v. 7, n. 1, p. 1-13, 2017. DOI: 10.1038/s41598-017-08610-w
UNIPROT. Universal Protein Resource. Disponível: <https://www.uniprot.org/>Acessado em:
jul 2021
UPADHYAY, P.; LALI, A. Protocatechuic acid production from lignin-associated phenolics.
Preparative Biochemistry & Biotechnology, p. 1-6, 2021. DOI:
10.1080/10826068.2021.1881908
URATA, M.; UCHIDA, E.; NOJIRI, H.; OMORI, T.; OBO, R.; MIYAURA, N.; OUCHIYAMA,
N. Genes involved in aniline degradation by Delftia acidovorans strain 7N and its distribution in
the natural environment. Bioscience, biotechnology, and biochemistry, v. 68, n. 12, p. 2457-
2465, 2004. DOI: 10.1271/bbb.68.2457
VAIDYA, S.S.; PATEL, A.B.; JAIN, K.; AMIN, S.; MADAMWAR, D. Characterizing the
bacterial consortium ASDF capable of catabolic degradation of fluoranthene and other mono-and
poly-aromatic hydrocarbons. 3 Biotech, v. 10, n. 11, p. 1-12, 2020. DOI: 10.1007/s13205-020-
02478-w
VALLECILLOS, L.; SADEF, Y.; BORRULL, F.; POCURULL, E.; BESTER, K. Degradation of
synthetic fragrances by laccase-mediated system. Journal of Hazardous Materials, v. 334, p.
233-243, 2017. DOI: 10.1016/j.jhazmat.2017.04.003
VALLEDOR L, JORRIN J. Back to the basics: maximizing the information obtained by
quantitative two dimensional gel electrophoresis analyses by an appropriate experimental design
and statistical analyses. Journal Proteomics. n. 74, v.1, p.1-18, 2011. DOI:
10.1016/j.jprot.2010.07.007
VAN BEILEN, J.B.; FUNHOFF, E.G.; VAN LOON, A.; JUST, A.; KAYSSER, L.; BOUZA, M.;
HOLTACKERS, R.; R THLISBERGER, M.; LI, Z.; WITHOLT, B. Cytochrome P450 alkane
hydroxylases of the CYP153 family are common in alkane-degrading eubacteria lacking integral
membrane alkane hydroxylases. Applied and Environmental Microbiology Journal, v. 72, n.1,
p. 59-65, 2006. DOI: 10.1128/AEM.72.1.59-65.2006
221
VAN BEILEN, J.B.; LI, Z.; DUETZ, W.A.; SMITS, T.H.; WITHOLT, B. Diversity of alkane
hydroxylase systems in the environment. Oil Gas Sci. Technol., v. 58, n. 4, p. 427-440, 2003.
DOI: 10.2516/ogst:2003026
VAN BEILEN, JAN B.; FUNHOFF, Enrico G. Alkane hydroxylases involved in microbial
alkane degradation. Applied microbiology and biotechnology, v. 74, n. 1, p. 13-21, 2007. DOI:
10.1007/s00253-006-0748-0
VAN BURIK, J.A.; SCHRECKHISE, R.W.; WHITE, T.C.; BOWDEN, R.A.; MYERSON, D.
Comparison of six extraction techniques for isolation of DNA from filamentous fungi. Medical
Mycology, v. 36, p. 299-303, 1998. DOI: 10.1080/02681219880000471
VAN HAMME, J.D.; SINGH, A.; WARD, O.P.; Recent advances in petroleum microbiology.
Microbiology Molecular Biology, v. 67, p. 503-549, 2003. DOI: 10.1128/MMBR.67.4.503–
549.2003
VANDERA, E.; SAMIOTAKI, M.; PARAPOULI, M.; PANAYOTOU, G.; KOUKKOU, A. I.
Comparative proteomic analysis of Arthrobacter phenanthrenivorans Sphe3 on phenanthrene,
phthalate and glucose. Journal of proteomics, v. 113, p. 73-89, 2015. DOI:
10.1016/j.jprot.2014.08.018
VARJANI, S. J.; UPASANI, V. N. A new look on factors affecting microbial degradation of
petroleum hydrocarbon pollutants. International Biodeterioration & Biodegradation, v. 120,
p. 71-83, 2017. DOI: 10.1016/j.ibiod.2017.02.006
VARJANI, S.J. Microbial degradation of petroleum hydrocarbons. Bioresource Technology, v.
223, p. 277-286, 2017. DOI: 10.1016/j.biortech.2016.10.037
VELEZ, P. A.; TALANO, M. A.; PAISIO, C. E.; AGOSTINI, E.; GONZALEZ, P. S. Synergistic
effect of chickpea plants and Mesorhizobium as a natural system for chromium
phytoremediation. Environmental Technology, v. 38, p. 2164–2172, 2017. DOI:
10.1080/09593330.2016.1247198
VENN. Venn diagram virtual tool. Bioinformatics & Evolutionary Genomics group.
Disponível em: <http://bioinformatics.psb.ugent.be/webtools/Venn/>.Acessado em: jul 2021.
VIEIRA, G. A. L. Destoxificação e descoloração de poluentes ambientais por consórcios
microbianos marinhos. 2016. 33f. Tese (Doutorado em Ciências Biológicas) - Universidade
Estadual Paulista, 2016. <http://hdl.handle.net/11449/148844>.
VIGNESHWARAN, C.; VASANTHARAJ, K.; KRISHNANAND, N.; SIVASUBRAMANIAN,
V. Production optimization, purification and characterization of lipopeptide biosurfactant
obtained from Brevibacillus sp. AVN13. Journal of Environmental Chemical Engineering, v.
9, n. 1, p. 104867, 2021. DOI:10.1016/j.jece.2020.104867
VIGNESHWARAN, C.; VASANTHARAJ, M.J.K.; SIVASUBRAMANIAN, V. A Review on
Biosurfactants and its Environmental Applications. IOSR Journal of Environmental Science,
Toxicology and Food, v. 10, n. 152–160, 2016.
222
VINOTHINI, C.; SUDHAKAR, S.; RAVIKUMAR, R. Degradation of Petroleum and crude oil
by Pseudomonas and Bacillus cereus. International Journal of current Microbiology and
Applied Science. 2015; v. 4, n. 1, p.318-329, 2015. ISSN: 2319-7692
VIPOTNIK, Z.; MICHELIN, M.; TAVARES, T. Ligninolytic enzymes production during
polycyclic aromatic hydrocarbons degradation: effect of soil pH, soil amendments and fungal cocultivation. Biodegradation, v. 32, n. 2, p.193-215, 2021. DOI: 10.1007/s10532-021-09933-2
VO, C.D.T.; MICHAUD, J.; ELSEN, S.; FAIVRE, B.; BOUVERET, E.; BARRAS, F.;
FONTECAVE, M.; PELOSI, L. The O2-independent pathway of ubiquinone biosynthesis is
essential for denitrification in Pseudomonas aeruginosa. Journal of Biological Chemistry, v.
295, n. 27, p. 9021-9032, 2020. DOI: 0.1074/jbc.RA120.013748
VOOLSTRA, C.R.; ZIEGLER, M. Adapting with microbial help: microbiome flexibility
facilitates rapid responses to environmental change. BioEssays, v. 42, n. 7, p. 2000004. 2020.
DOI: 10.1002/bies.202000004
WAGHMODE, T.R; KURADE, M.B.; KHANDARE, R.V.; GOVINDWAR, S.P. A sequential
aerobic/microaerophilic decolorization of sulfonated mono azo dye Golden Yellow HER by
microbial consortium GGBL. International Biodeterioration & Biodegradation, v. 65,
p.1024–1034, 2011. DOI: 10.1016/j.ibiod.2011.08.002
WANAPAISAN, P.; LAOTHAMTEEP, N.; VEJARANO, F.; CHAKRABORTY, J.;
SHINTANI, M.; MUANGCHINDA, C.; PINYAKONG, O. Synergistic degradation of pyrene by
five culturable bacteria in a mangrove sediment-derived bacterial consortium. Journal of
Hazardous Materials, v. 342, p. 561-570, 2018. DOI: 10.1016/j.jhazmat.2017.08.062
WANG, F.; ZHANG, D.; WU, X.; DENG, S. Biodegradation of anionic polyacrylamide
mediated by laccase and amidase: Docking, virtual mutation based on affinity and DFT study.
New Journal of Chemistry, v. 45, p.14554–14562, 2021.
WANG, H.; YANG, Y., XU, J.; KONG, D.; LI, Y. iTRAQ-based comparative proteomic
analysis of differentially expressed proteins in Rhodococcus sp. BAP-1 induced by fluoranthene.
Ecotoxicology and Environmental Safety, v. 169, p. 282-291, 2019.
DOI:10.1016/j.ecoenv.2018.11.022
WANG, H.; YANG, Y.; XU, J.; KONG, D.; LI, Y. iTRAQ-based comparative proteomic
analysis of differentially expressed proteins in Rhodococcus sp. BAP-1 induced by fluoranthene.
Ecotoxicology and Environmental Safety, v. 169, p. 282-291, 2019. DOI:
10.1016/j.ecoenv.2018.11.022
WANG, J.; WU, L.; YAN, X.; WU, Z.; LONG, G.; WANG, H.; XU, N. Clean Hydraulic
Reclamation Technology and Clean Foundation Treatment Technology—Countermeasures to
Contaminated Fills. In: WANG, J.; WU, L.; YAN, X.; WU, Z.; LONG, G.; WANG, H.; XU, N.
Sustainable Environmental Geotechnics. Springer, Cham, 2020. p. 185-194. DOI:
10.1007/978-3-030-51350-4_20
223
WANG, J.D.; QU, C.T.; SONG, S.F. Temperature-induced changes in the proteome of
Pseudomonas aeruginosa during petroleum hydrocarbon degradation. Archives of Microbiology,
v. 203, n. 5, p. 2463-2473, 2021. DOI: 10.1007/s00203-021-02211-y
WANG, JUN-DI; LI, XU-XIANG; QU, CHENG-TUN. A global proteomic change in petroleum
hydrocarbon-degrading Pseudomonas aeruginosa in response to high and low concentrations of
petroleum hydrocarbons. Current Microbiology, v. 76, n. 11, p. 1270-1277, 2019. DOI:
10.1007/s00284-019-01754-0
WANG, L.; ZHENG, B. Toxic effects of fluoranthene and copper on marine diatom
Phaeodactylum tricornutum. Journal of Environmental Sciences, v. 20, n. 11, p. 1363-1372,
2008. DOI: 10.1016/s1001-0742(08)62234-2
WANG, M.; CHEN, S.; JIA, X.; CHEN, L. Concept and types of bioremediation. In:
HASANUZZAMAN, M.; VARA, M.N. Handbook of Bioremediation. Academic Press.2021.
p.3-8. DOI: 10.1016/B978-0-12-819382-2.00001-6
WANG, Y.; QIAN, P.Y. Conservative Fragments in Bacterial 16S rRNA Genes and Primer
Design for 16S Ribosomal DNA Amplicons in Metagenomic Studies. PLoS ONE, v.4, e7401,
2009. DOI: 10.1371/journal.pone.0007401
WANG, Z.; FINGAS, M. Differentiation of the source of spilled oil and monitoring ofthe oil
weathering process using gas chromatography-mass Spectrometry. Journal of
Chromatography, v. 712, p. 321-343, 1995. ISSN: 0021-9673
WARDLE, D. A.; BARDGETT, R. D.; KLIRONOMOS, J. N.; SETALA, H.; VAN DER
PUTTEN, W. H.; WALL, D. H. Ecological linkages between aboveground and belowground
biota. Science, v. 304, n. 5677, p. 1629-1633, 2004. DOI: 10.1126/science.1094875
WEBER, A.; K GL, S. A.; JUNG, K. Time-dependent proteome alterations under osmotic stress
during aerobic and anaerobic growth in Escherichia coli. Journal of bacteriology, v. 188, n. 20,
p. 7165-7175, 2006. DOI: 10.1128/JB.00508-06
WEI, K.; YIN, H.; PENG, H.; LU, G.; DANG, Z. Bioremediation of triphenyl phosphate by
Brevibacillus brevis: Degradation characteristics and role of cytochrome P450 monooxygenase.
Science of The Total Environment, v. 627, p. 1389-1395, 2018. DOI:
10.1016/j.scitotenv.2018.02.028
WEI, R.; ZIMMERMANN, W. Microbial enzymes for the recycling of recalcitrant
petroleum‐ based plastics: how far are we?. Microbial Biotechnology, v. 10, n. 6, p. 1308-1322,
2017. DOI: 10.1111/1751-7915.12710
WEIJLAND, A.; HARMARK, K.; COOL, R. H.; ANBORGH, P. H.; PARMEGGIANI, A.
Elongation factor Tu: a molecular switch in protein biosynthesis. Molecular microbiology, v. 6,
n. 6, p. 683-688, 1992. DOI: 10.1111/j.1365-2958.1992.tb01516.x
224
WENTZEL, A.; ELLINGSEN, T. E.; KOTLAR, H. K.; ZOTCHEV, S. B.; HOLST, M. T.
Bacterial metabolism of long-chain n-alkanes. Applied Microbial Biotechnology, v.76, p. 1209-
1221, 2007. DOI 10.1007/s00253-007-1119-1
WHITE, T.J.; BRUNS, T., LEE, S.; TAYLOR, J. Amplification and direct sequencing os fungal
ribosomal RNA genes for philogenetics. In: (Eds.) INNIS MA, GELFAND DH, SNINSKY JJ,
WHITE TJ. PCR Protocols: A Guide to Methods an Applications. San Diego: Academic Press,
p. 315-322, 1990.
WILSON, K. Enzyme. In:WILSON, K.; WALKER, J. Principles and Techniques of
Biochemistry and Molecular Biology, New York: Cambridge University Pess. 7 ed. Cap 15, p.
581- 624, 2010.
WILSON, K.; WALKER, J. M. Principles and techniques of pratical biochemistry. 4th New
York, 586 p.1995.
WIPO - World Intellectual Property Organization. Statistical profiles of countries: Brazil
Disponível em:< https://www.wipo.int/ipstats/en/statistics/country_profile/profile. jsp? code =
BR>Acesso em: maio 2020a.
WIPO - World Intellectual Property Organization. Statistics. Facts and Figures. Retrieved.
Disponível em:< https://www.wipo.int/edocs/infogdocs/en/ipfactsandfigures2019/>Acesso em:
maio 20.
WOJCIESZYŃSKA, D; HUPERT-KOCUREK, K.; GREŃ, I.; GUZIK, U. High activity catechol
2,3-dioxygenase from the cresols - Degrading Stenotrophomonas maltophilia strain KB2.
International Biodeterioration & Biodegradation, v. 65, p. 853–858, 2011. DOI:
10.1016/j.ibiod.2011.06.006
WONG, D.W.S. Structure and action mechanism of ligninolytic enzymes. Applied Biochemistry
and Biotechnology, v. 157, n. 2, p. 174-209, 2009. DOI 10.1007/s12010-008-8279-z
WOS - Web of Science. Perfis de autor. Disponível em:< https://wwwwebofscience.ez10.periodicos.capes.gov.br/wos/author/record/43662> Acesso em: Março 2021
WÖSTEN H.A. Filamentous fungi for the production of enzymes, chemicals and materials.
Current Opinion in Biotechnology, v. 59, p. 65-70, 2019. DOI: 10.1016/j.copbio.2019.02.010
XIA, M.; FU, D.; CHAKRABORTY, R.; SINGH, R. P.; TERRY, N. Enhanced crude oil
depletion by constructed bacterial consortium comprising bioemulsifier producer and petroleum
hydrocarbon degraders, Bioresource Technology, v. 282, p. 456-463, 2019. DOI:
10.1016/j.biortech.2019.01.131
XU, J.; WANG, H.; KONG, D. 2-DE Compared with iTRAQ-based proteomic analysis of the
functional regulation of proteins in Rhodococcus sp. BAP-1 response to fluoranthene. In: IOP
Conference Series: Earth and Environmental Science. IOP Publishing, 2018. p. 012032. DOI:
10.1088/1755-1315/111/1/012032
225
YAKUBU, M.B. Biological approach to oil spills remediation in the soil. Nigerian Journal of
Biotechnology, v.6, n. 24, p. 2735-2739, 2007. DOI: 10.5897/AJB2007.000-2437
YANG, B.; LI, Y.; SHANG, Q.; WU, M.; ZHOU, Q.; XU, Q.; DING, C. Enhanced
biodegradation of m-dichlorobenzene by Brevibacillus agri under the coexistence system of
Zn(II) and Se(IV). Environmental Pollutants and Bioavailability, v. 32, p. 207–216, 2020.
DOI: 10.1080/26395940.2020.1845982
YANG, R.; ZHANG, G.; LI, S.; MOAZENI, F.; LI, Y.; WU, Y.; ZHANG, W.; CHEN, T.; LIU,
G.; ZHANG, B.; WU, X. Degradation of crude oil by mixed cultures of bacteria isolated from the
Qinghai-Tibet plateau and comparative analysis of metabolic mechanisms. Environmental
Science and Pollution Research, v. 26, n. 2, p. 1834-1847, 2019. DOI: 10.1007/s11356-018-
3718-z
YE, C.; CHING, T.H.; YOZA, B.A.; MASUTANI, S.; LI, Q.X. Cometabolic degradation of
blended biodiesel by Moniliella wahieum Y12T and Byssochlamys nivea M1. International
Biodeterioration & Biodegradation, v. 125, p. 166-169, 2017. DOI:
10.1016/j.ibiod.2017.09.010
YU, J.; GE, J.; HEUVELING, J.; SCHNEIDER, E.; YANG, M. Structural basis for substrate
specificity of an amino acid ABC transporter. Proceedings of the National Academy of
Sciences, v. 112, n. 16, p. 5243-5248, 2015. DOI: 10.1073/pnas.1415037112
YUAN, X.; ZHANG, X.; CHEN, X.; KONG, D.; LIU, X.; SHEN, S. Synergistic degradation of
crude oil by indigenous bacterial consortium and exogenous fungus Scedosporium boydii.
Bioresource technology, v. 264, p. 190-197, 2018.DOI: 10.1016/j.biortech.2018.05.072
YUN, S. H.; PARK, G. W.; KIM, J. Y.; KWON, S. O.; CHOI, C. W.; LEEM, S. H.; KIM, S. I.
Proteomic characterization of the Pseudomonas putida KT2440 global response to a monocyclic
aromatic compound by iTRAQ analysis and 1DE-MudPIT. Journal of proteomics, v. 74, n. 5, p.
620-628, 2011. DOI: 10.1016/j.jprot.2011.01.020
ZAFRA, G.; TAYLOR, T.D.; ABSALÓN, A.E.; CORTÉS-ESPINOSA, D.V. Comparative
metagenomic analysis of PAH degradation in soil by a mixed microbial consortium. Journal of
Hazardous Materials, v. 318, p. 702-710, 2016. DOI: 10.1016/j.jhazmat.2016.07.060
ZANAROLI, G.; DI TORO, S.; TODARO, D.; VARESE, G. C.; BERTOLOTTO, A.; FAVA, F.
Characterization of two diesel fuel degrading microbial consortia enriched from a non
acclimated, complex source of microorganisms. Microbial Cell Factories, v. 9, n. 1, p. 10, 2010.
DOI: 10.1186/1475-2859-9-10
ZEHRA, A.; DUBEY, M. K.; MEENA, M.; AAMIR, M.; PATEL, C. B.; UPADHYAY, R. S.
Role of penicillium species in bioremediation processes. In: GUPTA, V. K.; RODRIGUEZCOUTO, S. (Ed.) New and future developments in microbial biotechnology and
bioengineering. Elsevier, 2018. p. 247-260. DOI: 10.1016/B978-0-444-63501-3.00014-4
ZENG, S.; QIN, X.; XIA, L. Degradation of the herbicide isoproturon by laccase-mediator
systems. Biochem Eng J v. 119, p. 92-100, 2017. DOI: 10.1016/j.bej.2016.12.016
226
ZHANG, B.; CHAMBERS, M. C.; TABB, DAVID L. Proteomic parsimony through bipartite
graph analysis improves accuracy and transparency. Journal of proteome research, v. 6, n. 9, p.
3549-3557, 2007. DOI: 10.1021/pr070230d
ZHANG, B.; MATCHINSKI, EJ.; CHEN, B.; YE, X.; JING, L.; LEE K. Marine oil spills—Oil
pollution, sources and effects. In: SHEPPARD, C. (Ed) World seas: an environmental
evaluation, 2nd edn Academic Press,2019, pp 391-406. DOI: 10.1016/B978-0-12-805052-
1.00024-3
ZHANG, C.; WU, D.; REN, Huixue. Bioremediation of oil contaminated soil using agricultural
wastes via microbial consortium. Scientific Reports, v. 10, n. 1, p. 1-8, 2020. DOI:
10.1038/s41598-020-66169-5
ZHANG, H.; ZHANG, X.; GENG, A. Expression of a novel manganese peroxidase from Cerrena
unicolor BBP6 in Pichia pastoris and its application in dye decolorization and PAH degradation.
Biochemical Engineering Journal,. v. 153, p. 107402, 2020. DOI: 10.1016/j.bej.2019.107402
ZHANG, J.; YU, Q.; ZHENG, F.; LONG, C.; LU, Z.; DUAN, Z. Comparing keywords plus of
WOS and author keywords: A case study of patient adherence research. Journal of the
Association for Information Science and Technology, v. 6, n. 4, p. 967-972, 2016. DOI:
10.1002/asi.23437
ZHANG, L.; LI, X.; ZUO, W.; LI, S.; SUN, G.; WANG, W.; HUANG, H. Root exuded lowmolecular-weight organic acids affected the phenanthrene degrader differently: A multi-omics
study. Journal of Hazardous Materials, v. 414, p. 125367, 2021. DOI:
10.1016/j.jhazmat.2021.125367
ZHANG, M.; YOSHIKAWA, M. Bioremediation: Recent Advancements and Limitations. In:
REDDY, K. R; AGNIHOTRI, A. K.; YUKSELEN-AKSOY, Y.; DUBEY, B.K.; BANSAL, A.
Sustainable Environmental Geotechnics. Springer, Cham, 2020. p. 21-29. DOI: 10.1007/978-
3-030-51350-4_3
ZHAO X, Y.; LI H. The optimized co-cultivation system of Penicillium oxalicum 16 and
Trichoderma reesei RUT-C30 achieved a high yield of hydrolase applied in second-generation
bioethanol production. Renew Energy, v. 136, p. 1028-1035, 2019. DOI:
10.1016/j.renene.2019.01.066
ZHOU, H.; ZHANG, S.; XIE, J.; WEI, H.; HU, Z.; WANG, H. Pyrene biodegradation and its
potential pathway involving Roseobacter clade bacteria. International Biodeterioration &
Biodegradation, v. 150, p. 104961, 2020. DOI: 10.1016/j.ibiod.2020.104961
ZHOU, Y.; EID, T.; HASSEL, B.; DANBOLT, N. C. Novel aspects of glutamine synthetase in
ammonia homeostasis. Neurochemistry international, v. 140, p. 104809, 2020. DOI:
10.1016/j.neuint.2020.104809
ZHUANG, M.; SANGANYADO, E.; XU, L.; ZHU, J.; LI, P.; LIU, W. High throughput
sediment DNA sequencing reveals azo dye degrading bacteria inhabit nearshore sediments.
Microorganisms, v. 8, n. 2, p. 233, 2020. DOI: 10.3390/microrganismos8020233 | pt_BR |