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SANCHEZ, Marília Bixilia e ARAUJO, Welington Luiz de. Effects of microbial inoculum optimization on biomethane production from paper mill solid residues. Brazilian Journal of Microbiology, v. 57, 2026Tradução . . Disponível em: https://doi.org/10.1007/s42770-026-01893-0. Acesso em: 03 maio 2026.
APA
Sanchez, M. B., & Araujo, W. L. de. (2026). Effects of microbial inoculum optimization on biomethane production from paper mill solid residues. Brazilian Journal of Microbiology, 57. doi:10.1007/s42770-026-01893-0
NLM
Sanchez MB, Araujo WL de. Effects of microbial inoculum optimization on biomethane production from paper mill solid residues [Internet]. Brazilian Journal of Microbiology. 2026 ; 57[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s42770-026-01893-0
Vancouver
Sanchez MB, Araujo WL de. Effects of microbial inoculum optimization on biomethane production from paper mill solid residues [Internet]. Brazilian Journal of Microbiology. 2026 ; 57[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s42770-026-01893-0
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MARTINEZ, Lina Rocío del Pilar Rada et al. Microbial taxonomic and functional features involved in self-purification of a brazilian polluted river. Water, Air, & Soil Pollution, v. 237, 2026Tradução . . Disponível em: https://doi.org/10.1007/s11270-026-09307-5. Acesso em: 03 maio 2026.
APA
Martinez, L. R. del P. R., Olchanheski, L. R., Silva, E. G. da, Ichiwaki, S., Ortiz-Vera, M. P., Lima, F. R. de, et al. (2026). Microbial taxonomic and functional features involved in self-purification of a brazilian polluted river. Water, Air, & Soil Pollution, 237. doi:10.1007/s11270-026-09307-5
NLM
Martinez LR del PR, Olchanheski LR, Silva EG da, Ichiwaki S, Ortiz-Vera MP, Lima FR de, Sato MIZ, Padilla G, Araújo WL de. Microbial taxonomic and functional features involved in self-purification of a brazilian polluted river [Internet]. Water, Air, & Soil Pollution. 2026 ; 237[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s11270-026-09307-5
Vancouver
Martinez LR del PR, Olchanheski LR, Silva EG da, Ichiwaki S, Ortiz-Vera MP, Lima FR de, Sato MIZ, Padilla G, Araújo WL de. Microbial taxonomic and functional features involved in self-purification of a brazilian polluted river [Internet]. Water, Air, & Soil Pollution. 2026 ; 237[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s11270-026-09307-5
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BAUERMEISTER, Anelize et al. Chemical and microbial diversity of a tropical intertidal ascidian holobiont. Marine Environmental Research, v. 194, p. 1-13, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.marenvres.2023.106303. Acesso em: 03 maio 2026.
APA
Bauermeister, A., Furtado, L. C., Ferreira, E. G., Moreira, E. A., Jimenez, P. C., Lopes, N. P., et al. (2024). Chemical and microbial diversity of a tropical intertidal ascidian holobiont. Marine Environmental Research, 194, 1-13. doi:10.1016/j.marenvres.2023.106303
NLM
Bauermeister A, Furtado LC, Ferreira EG, Moreira EA, Jimenez PC, Lopes NP, Araújo WL, Olchanheski LR, Lotufo TM da C, Costa-Lotufo LV. Chemical and microbial diversity of a tropical intertidal ascidian holobiont [Internet]. Marine Environmental Research. 2024 ; 194 1-13.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.marenvres.2023.106303
Vancouver
Bauermeister A, Furtado LC, Ferreira EG, Moreira EA, Jimenez PC, Lopes NP, Araújo WL, Olchanheski LR, Lotufo TM da C, Costa-Lotufo LV. Chemical and microbial diversity of a tropical intertidal ascidian holobiont [Internet]. Marine Environmental Research. 2024 ; 194 1-13.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.marenvres.2023.106303
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ARAÚJO, Welington Luiz de. Microbiologia em foco: como a microoraganismos está mudando a agricultura. RuralCampoCast. São Paulo: Instituto de Ciências Biomédicas, Universidade de São Paulo. Disponível em: https://www.youtube.com/live/xEvq2Dr_Zlg?si=1Cg-qOZkbF5v_y7I. Acesso em: 03 maio 2026. , 2024
APA
Araújo, W. L. de. (2024). Microbiologia em foco: como a microoraganismos está mudando a agricultura. RuralCampoCast. São Paulo: Instituto de Ciências Biomédicas, Universidade de São Paulo. Recuperado de https://www.youtube.com/live/xEvq2Dr_Zlg?si=1Cg-qOZkbF5v_y7I
NLM
Araújo WL de. Microbiologia em foco: como a microoraganismos está mudando a agricultura [Internet]. RuralCampoCast. 2024 ;[citado 2026 maio 03 ] Available from: https://www.youtube.com/live/xEvq2Dr_Zlg?si=1Cg-qOZkbF5v_y7I
Vancouver
Araújo WL de. Microbiologia em foco: como a microoraganismos está mudando a agricultura [Internet]. RuralCampoCast. 2024 ;[citado 2026 maio 03 ] Available from: https://www.youtube.com/live/xEvq2Dr_Zlg?si=1Cg-qOZkbF5v_y7I
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FERREIRA, Anderson et al. Shifts in the structure and composition of root-associated bacterial communities caused by Ceratocystis fimbriata infection in eucalyptus. The Microbe, v. 4, p. 1-8, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.microb.2024.100103. Acesso em: 03 maio 2026.
APA
Ferreira, A., González, E. R., Andreote, F. D., Azevedo, J. L. de, & Araújo, W. L. (2024). Shifts in the structure and composition of root-associated bacterial communities caused by Ceratocystis fimbriata infection in eucalyptus. The Microbe, 4, 1-8. doi:10.1016/j.microb.2024.100103
NLM
Ferreira A, González ER, Andreote FD, Azevedo JL de, Araújo WL. Shifts in the structure and composition of root-associated bacterial communities caused by Ceratocystis fimbriata infection in eucalyptus [Internet]. The Microbe. 2024 ; 4 1-8.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.microb.2024.100103
Vancouver
Ferreira A, González ER, Andreote FD, Azevedo JL de, Araújo WL. Shifts in the structure and composition of root-associated bacterial communities caused by Ceratocystis fimbriata infection in eucalyptus [Internet]. The Microbe. 2024 ; 4 1-8.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.microb.2024.100103
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PAPP, Luiz Antonio et al. Total phosphorus contents currently found in the raw wastewater – Problems and technical solutions for its removal in full-scale wastewater treatment plants. Resources, Conservation and Recycling, v. 196, p. 1-10, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.resconrec.2023.107026. Acesso em: 03 maio 2026.
APA
Papp, L. A., Rezende, J. C., Júdice, W. A. de S., Sanches, M. B., & Araújo, W. L. (2023). Total phosphorus contents currently found in the raw wastewater – Problems and technical solutions for its removal in full-scale wastewater treatment plants. Resources, Conservation and Recycling, 196, 1-10. doi:10.1016/j.resconrec.2023.107026
NLM
Papp LA, Rezende JC, Júdice WA de S, Sanches MB, Araújo WL. Total phosphorus contents currently found in the raw wastewater – Problems and technical solutions for its removal in full-scale wastewater treatment plants [Internet]. Resources, Conservation and Recycling. 2023 ; 196 1-10.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.resconrec.2023.107026
Vancouver
Papp LA, Rezende JC, Júdice WA de S, Sanches MB, Araújo WL. Total phosphorus contents currently found in the raw wastewater – Problems and technical solutions for its removal in full-scale wastewater treatment plants [Internet]. Resources, Conservation and Recycling. 2023 ; 196 1-10.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.resconrec.2023.107026
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DOURADO, Manuella Nóbrega et al. Transcriptome and secretome analyses of endophyte methylobacterium mesophilicum and pathogen Xylella fastidiosa interacting show nutrient competition. Microorganisms, v. 11, n. 11, p. 28 , 2023Tradução . . Disponível em: https://doi.org/10.3390/microorganisms11112755. Acesso em: 03 maio 2026.
APA
Dourado, M. N., Pierry, P. M., Feitosa Junior, O. R., Uceda-Campos, G., Barbosa, D., Zaini, P. A., et al. (2023). Transcriptome and secretome analyses of endophyte methylobacterium mesophilicum and pathogen Xylella fastidiosa interacting show nutrient competition. Microorganisms, 11( 11), 28 . doi:10.3390/microorganisms11112755
NLM
Dourado MN, Pierry PM, Feitosa Junior OR, Uceda-Campos G, Barbosa D, Zaini PA, Dandekar AM, Da Silva AM, Araújo WL de. Transcriptome and secretome analyses of endophyte methylobacterium mesophilicum and pathogen Xylella fastidiosa interacting show nutrient competition [Internet]. Microorganisms. 2023 ; 11( 11): 28 .[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/microorganisms11112755
Vancouver
Dourado MN, Pierry PM, Feitosa Junior OR, Uceda-Campos G, Barbosa D, Zaini PA, Dandekar AM, Da Silva AM, Araújo WL de. Transcriptome and secretome analyses of endophyte methylobacterium mesophilicum and pathogen Xylella fastidiosa interacting show nutrient competition [Internet]. Microorganisms. 2023 ; 11( 11): 28 .[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/microorganisms11112755
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GOMES, Tainah Colombo et al. Effect of monocerin, a fungal secondary metabolite, on endothelial cells. Toxins, v. 15, n. 5, p. 1-18, 2023Tradução . . Disponível em: https://doi.org/10.3390/toxins15050344. Acesso em: 03 maio 2026.
APA
Gomes, T. C., Conrado, R., Oliveira, R. C. de, Selari, P. J. R. G., Melo, I. S. de, Maria, D. A., et al. (2023). Effect of monocerin, a fungal secondary metabolite, on endothelial cells. Toxins, 15( 5), 1-18. doi:10.3390/toxins15050344
NLM
Gomes TC, Conrado R, Oliveira RC de, Selari PJRG, Melo IS de, Maria DA, Souza AOD, Araújo WL de. Effect of monocerin, a fungal secondary metabolite, on endothelial cells [Internet]. Toxins. 2023 ; 15( 5): 1-18.[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/toxins15050344
Vancouver
Gomes TC, Conrado R, Oliveira RC de, Selari PJRG, Melo IS de, Maria DA, Souza AOD, Araújo WL de. Effect of monocerin, a fungal secondary metabolite, on endothelial cells [Internet]. Toxins. 2023 ; 15( 5): 1-18.[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/toxins15050344
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PAPP, Luiz Antonio et al. Low biological phosphorus removal from effluents treated by slow sand filters. Applied Microbiology and Biotechnology, p. 1-13, 2022Tradução . . Disponível em: https://doi.org/10.1007/s00253-022-12077-9. Acesso em: 03 maio 2026.
APA
Papp, L. A., Rezende, J. C., Júdice, W. A. de S., Sanchez, M. B., & Araújo, W. L. de. (2022). Low biological phosphorus removal from effluents treated by slow sand filters. Applied Microbiology and Biotechnology, 1-13. doi:10.1007/s00253-022-12077-9
NLM
Papp LA, Rezende JC, Júdice WA de S, Sanchez MB, Araújo WL de. Low biological phosphorus removal from effluents treated by slow sand filters [Internet]. Applied Microbiology and Biotechnology. 2022 ; 1-13.[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s00253-022-12077-9
Vancouver
Papp LA, Rezende JC, Júdice WA de S, Sanchez MB, Araújo WL de. Low biological phosphorus removal from effluents treated by slow sand filters [Internet]. Applied Microbiology and Biotechnology. 2022 ; 1-13.[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s00253-022-12077-9
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ZWAR, Ingrid P. et al. Biosynthesis of silver nanoparticles using actinomycetes, phytotoxicity on rice seeds, and potential application in the biocontrol of phytopathogens. Journal of Basic Microbiology, p. 1-11, 2022Tradução . . Disponível em: https://doi.org/10.1002/jobm.202200439. Acesso em: 03 maio 2026.
APA
Zwar, I. P., Trotta, C. do V., Ziotti, A. B. S., Lima Neto, M., Araújo, W. L. de, Melo, I. S. de, et al. (2022). Biosynthesis of silver nanoparticles using actinomycetes, phytotoxicity on rice seeds, and potential application in the biocontrol of phytopathogens. Journal of Basic Microbiology, 1-11. doi:10.1002/jobm.202200439
NLM
Zwar IP, Trotta C do V, Ziotti ABS, Lima Neto M, Araújo WL de, Melo IS de, Ottoni CA, Souza AO de. Biosynthesis of silver nanoparticles using actinomycetes, phytotoxicity on rice seeds, and potential application in the biocontrol of phytopathogens [Internet]. Journal of Basic Microbiology. 2022 ; 1-11.[citado 2026 maio 03 ] Available from: https://doi.org/10.1002/jobm.202200439
Vancouver
Zwar IP, Trotta C do V, Ziotti ABS, Lima Neto M, Araújo WL de, Melo IS de, Ottoni CA, Souza AO de. Biosynthesis of silver nanoparticles using actinomycetes, phytotoxicity on rice seeds, and potential application in the biocontrol of phytopathogens [Internet]. Journal of Basic Microbiology. 2022 ; 1-11.[citado 2026 maio 03 ] Available from: https://doi.org/10.1002/jobm.202200439
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PAPP, Luiz Antonio et al. Onsite wastewater treatment upgrade for water reuse in cooling towers and toilets. Water, v. 14, n. 10, p. 1-14, 2022Tradução . . Disponível em: https://doi.org/10.3390/w14101612. Acesso em: 03 maio 2026.
APA
Papp, L. A., Rodrigues, F. A., Júdice, W. A. de S., & Araújo, W. L. de. (2022). Onsite wastewater treatment upgrade for water reuse in cooling towers and toilets. Water, 14( 10), 1-14. doi:10.3390/w14101612
NLM
Papp LA, Rodrigues FA, Júdice WA de S, Araújo WL de. Onsite wastewater treatment upgrade for water reuse in cooling towers and toilets [Internet]. Water. 2022 ; 14( 10): 1-14.[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/w14101612
Vancouver
Papp LA, Rodrigues FA, Júdice WA de S, Araújo WL de. Onsite wastewater treatment upgrade for water reuse in cooling towers and toilets [Internet]. Water. 2022 ; 14( 10): 1-14.[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/w14101612
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PARADA-PINILLA, Maria Paula et al. Biopolymer production by halotolerant bacteria isolated from caatinga biome. Brazilian Journal of Microbiology, v. 52, n. 2, p. 547-559, 2021Tradução . . Disponível em: https://doi.org/10.1007/s42770-021-00426-1. Acesso em: 03 maio 2026.
APA
Parada-Pinilla, M. P., Ferreira, M. A., Roncallo, J. C., Santos, S. N., Melo, I. S., Assef, A. N. B., et al. (2021). Biopolymer production by halotolerant bacteria isolated from caatinga biome. Brazilian Journal of Microbiology, 52( 2), 547-559. doi:10.1007/s42770-021-00426-1
NLM
Parada-Pinilla MP, Ferreira MA, Roncallo JC, Santos SN, Melo IS, Assef ANB, Wilke DV, Silva LF da, Garrido LM, Araújo WL de, Padilla G. Biopolymer production by halotolerant bacteria isolated from caatinga biome [Internet]. Brazilian Journal of Microbiology. 2021 ; 52( 2): 547-559.[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s42770-021-00426-1
Vancouver
Parada-Pinilla MP, Ferreira MA, Roncallo JC, Santos SN, Melo IS, Assef ANB, Wilke DV, Silva LF da, Garrido LM, Araújo WL de, Padilla G. Biopolymer production by halotolerant bacteria isolated from caatinga biome [Internet]. Brazilian Journal of Microbiology. 2021 ; 52( 2): 547-559.[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s42770-021-00426-1
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RODRIGUES, Alexandre Gomes et al. Anti-Biofilm action of biological silver nanoparticles produced by Aspergillus tubingensis and Antimicrobial activity of fabrics carrying it. Biointerface Research in Applied Chemistry, v. 11, n. 6, p. 14764-14774, 2021Tradução . . Disponível em: https://doi.org/10.33263/BRIAC116.1476414774. Acesso em: 03 maio 2026.
APA
Rodrigues, A. G., Ruiz, R. de C., Selari, P. J. R. G., Araújo, W. L. de, & Souza, A. O. de. (2021). Anti-Biofilm action of biological silver nanoparticles produced by Aspergillus tubingensis and Antimicrobial activity of fabrics carrying it. Biointerface Research in Applied Chemistry, 11( 6), 14764-14774. doi:10.33263/BRIAC116.1476414774
NLM
Rodrigues AG, Ruiz R de C, Selari PJRG, Araújo WL de, Souza AO de. Anti-Biofilm action of biological silver nanoparticles produced by Aspergillus tubingensis and Antimicrobial activity of fabrics carrying it [Internet]. Biointerface Research in Applied Chemistry. 2021 ; 11( 6): 14764-14774.[citado 2026 maio 03 ] Available from: https://doi.org/10.33263/BRIAC116.1476414774
Vancouver
Rodrigues AG, Ruiz R de C, Selari PJRG, Araújo WL de, Souza AO de. Anti-Biofilm action of biological silver nanoparticles produced by Aspergillus tubingensis and Antimicrobial activity of fabrics carrying it [Internet]. Biointerface Research in Applied Chemistry. 2021 ; 11( 6): 14764-14774.[citado 2026 maio 03 ] Available from: https://doi.org/10.33263/BRIAC116.1476414774
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SELARI, Priscila Jane Romano Gonçalves et al. Short-Term effect in soil microbial community of two strategies of recovering degraded area in Brazilian Savanna: a pilot case study. Frontiers in Microbiology, v. 12, p. 1-10, 2021Tradução . . Disponível em: https://doi.org/10.3389/fmicb.2021.661410. Acesso em: 03 maio 2026.
APA
Selari, P. J. R. G., Olchanheski, L. R., Ferreira, A. J., Paim, T. do P., Calgaro Junior, G., Claudio, F. L., et al. (2021). Short-Term effect in soil microbial community of two strategies of recovering degraded area in Brazilian Savanna: a pilot case study. Frontiers in Microbiology, 12, 1-10. doi:10.3389/fmicb.2021.661410
NLM
Selari PJRG, Olchanheski LR, Ferreira AJ, Paim T do P, Calgaro Junior G, Claudio FL, Alves EM, Santos D de C, Araújo WL de, Silva FG. Short-Term effect in soil microbial community of two strategies of recovering degraded area in Brazilian Savanna: a pilot case study [Internet]. Frontiers in Microbiology. 2021 ; 12 1-10.[citado 2026 maio 03 ] Available from: https://doi.org/10.3389/fmicb.2021.661410
Vancouver
Selari PJRG, Olchanheski LR, Ferreira AJ, Paim T do P, Calgaro Junior G, Claudio FL, Alves EM, Santos D de C, Araújo WL de, Silva FG. Short-Term effect in soil microbial community of two strategies of recovering degraded area in Brazilian Savanna: a pilot case study [Internet]. Frontiers in Microbiology. 2021 ; 12 1-10.[citado 2026 maio 03 ] Available from: https://doi.org/10.3389/fmicb.2021.661410
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KUNIYOSHI, Taís Mayumi et al. Pediocin PA-1 production by Pediococcus pentosaceus ET34 using non-detoxified hemicellulose hydrolysate obtained from hydrothermal pretreatment of sugarcane bagasse. Bioresource Technology, v. 338, p. 1-12 art. 125565, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.biortech.2021.125565. Acesso em: 03 maio 2026.
APA
Kuniyoshi, T. M., Mendonça, C. M. N., Vieira, V. B., Robl, D., Franco, B. D. G. de M., Todorov, S. D., et al. (2021). Pediocin PA-1 production by Pediococcus pentosaceus ET34 using non-detoxified hemicellulose hydrolysate obtained from hydrothermal pretreatment of sugarcane bagasse. Bioresource Technology, 338, 1-12 art. 125565. doi:10.1016/j.biortech.2021.125565
NLM
Kuniyoshi TM, Mendonça CMN, Vieira VB, Robl D, Franco BDG de M, Todorov SD, Tomé E, O\2019Connor PM, Converti A, Araújo WL de, Vasconcellos LPSP, Varani A de M, Cotter PD, Rabelo SC, Oliveira RP de S. Pediocin PA-1 production by Pediococcus pentosaceus ET34 using non-detoxified hemicellulose hydrolysate obtained from hydrothermal pretreatment of sugarcane bagasse [Internet]. Bioresource Technology. 2021 ; 338 1-12 art. 125565.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.biortech.2021.125565
Vancouver
Kuniyoshi TM, Mendonça CMN, Vieira VB, Robl D, Franco BDG de M, Todorov SD, Tomé E, O\2019Connor PM, Converti A, Araújo WL de, Vasconcellos LPSP, Varani A de M, Cotter PD, Rabelo SC, Oliveira RP de S. Pediocin PA-1 production by Pediococcus pentosaceus ET34 using non-detoxified hemicellulose hydrolysate obtained from hydrothermal pretreatment of sugarcane bagasse [Internet]. Bioresource Technology. 2021 ; 338 1-12 art. 125565.[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.biortech.2021.125565
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NARANJO, Samantha Beatríz Esparza et al. Potential for the biodegradation of atrazine using leaf litter fungi from a subtropical protection area. Current Microbiology, p. 11 , 2020Tradução . . Disponível em: https://doi.org/10.1007/s00284-020-02288-6. Acesso em: 03 maio 2026.
APA
Naranjo, S. B. E., Silva, G. F. da, Castaño, D. C. D., Araújo, W. L. de, Peres, C. K., Boroski, M., & Santos, R. C. B. (2020). Potential for the biodegradation of atrazine using leaf litter fungi from a subtropical protection area. Current Microbiology, 11 . doi:10.1007/s00284-020-02288-6
NLM
Naranjo SBE, Silva GF da, Castaño DCD, Araújo WL de, Peres CK, Boroski M, Santos RCB. Potential for the biodegradation of atrazine using leaf litter fungi from a subtropical protection area [Internet]. Current Microbiology. 2020 ;11 .[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s00284-020-02288-6
Vancouver
Naranjo SBE, Silva GF da, Castaño DCD, Araújo WL de, Peres CK, Boroski M, Santos RCB. Potential for the biodegradation of atrazine using leaf litter fungi from a subtropical protection area [Internet]. Current Microbiology. 2020 ;11 .[citado 2026 maio 03 ] Available from: https://doi.org/10.1007/s00284-020-02288-6
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GUTIÉRREZ, Karent Jurleid Romero et al. Phenotypic traits of Burkholderia spp. associated with ecological adaptation and plant-host interaction. Microbiological Research, v. 236, p. 9 , 2020Tradução . . Disponível em: https://doi.org/10.1016/j.micres.2020.126451. Acesso em: 03 maio 2026.
APA
Gutiérrez, K. J. R., Ribeiro, M. N. D., Garrido, L. M., Olchanheski, L. R., Mano, E. T., Andreote, F. D., et al. (2020). Phenotypic traits of Burkholderia spp. associated with ecological adaptation and plant-host interaction. Microbiological Research, 236, 9 . doi:10.1016/j.micres.2020.126451
NLM
Gutiérrez KJR, Ribeiro MND, Garrido LM, Olchanheski LR, Mano ET, Andreote FD, Valvano MA, Araújo WL de. Phenotypic traits of Burkholderia spp. associated with ecological adaptation and plant-host interaction [Internet]. Microbiological Research. 2020 ; 236 9 .[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.micres.2020.126451
Vancouver
Gutiérrez KJR, Ribeiro MND, Garrido LM, Olchanheski LR, Mano ET, Andreote FD, Valvano MA, Araújo WL de. Phenotypic traits of Burkholderia spp. associated with ecological adaptation and plant-host interaction [Internet]. Microbiological Research. 2020 ; 236 9 .[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.micres.2020.126451
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BAUERMEISTER, Anelize et al. Insights into Eudistoma vannamei Holobiome: microbial and chemical diversities. Marine Drugs. Switzerland: MDPI AG. Disponível em: https://doi.org/10.3390/md18010040. Acesso em: 03 maio 2026. , 2020
APA
Bauermeister, A., Furtado, L. C., Ferreira, E. G., Jimenez, P. C., Olchanheski, L. R., Lotufo, T. M. da C., et al. (2020). Insights into Eudistoma vannamei Holobiome: microbial and chemical diversities. Marine Drugs. Switzerland: MDPI AG. doi:10.3390/md18010040
NLM
Bauermeister A, Furtado LC, Ferreira EG, Jimenez PC, Olchanheski LR, Lotufo TM da C, Costa-Lotufo LV, Araújo WL de, Lopes NP. Insights into Eudistoma vannamei Holobiome: microbial and chemical diversities [Internet]. Marine Drugs. 2020 ; 18( 40): 92.[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/md18010040
Vancouver
Bauermeister A, Furtado LC, Ferreira EG, Jimenez PC, Olchanheski LR, Lotufo TM da C, Costa-Lotufo LV, Araújo WL de, Lopes NP. Insights into Eudistoma vannamei Holobiome: microbial and chemical diversities [Internet]. Marine Drugs. 2020 ; 18( 40): 92.[citado 2026 maio 03 ] Available from: https://doi.org/10.3390/md18010040
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
OTTONI, Cristiane Angélica et al. Biogenic Aspergillus tubingensis silver nanoparticles’ invitro effects on human umbilical vein endothelial cells, normal human fibroblasts, HEPG2, and Galleria mellonella. Toxicology Research, v. 8, n. 6, p. 789-801, 2019Tradução . . Disponível em: https://doi.org/10.1039/c9tx00091g. Acesso em: 03 maio 2026.
APA
Ottoni, C. A., Maria, D. A., Gonçalves, P. J. R. de O., Araújo, W. L. de, & Souza, A. O. de. (2019). Biogenic Aspergillus tubingensis silver nanoparticles’ invitro effects on human umbilical vein endothelial cells, normal human fibroblasts, HEPG2, and Galleria mellonella. Toxicology Research, 8( 6), 789-801. doi:10.1039/c9tx00091g
NLM
Ottoni CA, Maria DA, Gonçalves PJR de O, Araújo WL de, Souza AO de. Biogenic Aspergillus tubingensis silver nanoparticles’ invitro effects on human umbilical vein endothelial cells, normal human fibroblasts, HEPG2, and Galleria mellonella [Internet]. Toxicology Research. 2019 ; 8( 6): 789-801.[citado 2026 maio 03 ] Available from: https://doi.org/10.1039/c9tx00091g
Vancouver
Ottoni CA, Maria DA, Gonçalves PJR de O, Araújo WL de, Souza AO de. Biogenic Aspergillus tubingensis silver nanoparticles’ invitro effects on human umbilical vein endothelial cells, normal human fibroblasts, HEPG2, and Galleria mellonella [Internet]. Toxicology Research. 2019 ; 8( 6): 789-801.[citado 2026 maio 03 ] Available from: https://doi.org/10.1039/c9tx00091g
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
SILVA, Cintia Faria da et al. Screening of plant growth-promoting endophytic bacteria from the roots of the medicinal plant Aloe vera. South African Journal of Botany, p. 14 , 2019Tradução . . Disponível em: https://doi.org/10.1016/j.sajb.2019.09.019. Acesso em: 03 maio 2026.
APA
Silva, C. F. da, Vitorino, L. C., Mendonça, M. A. C., Araújo, W. L. de, Ribeiro, M. N. D., Albuquerque, L. C. de, et al. (2019). Screening of plant growth-promoting endophytic bacteria from the roots of the medicinal plant Aloe vera. South African Journal of Botany, 14 . doi:10.1016/j.sajb.2019.09.019
NLM
Silva CF da, Vitorino LC, Mendonça MAC, Araújo WL de, Ribeiro MND, Albuquerque LC de, Soares MA, Souchie EL. Screening of plant growth-promoting endophytic bacteria from the roots of the medicinal plant Aloe vera [Internet]. South African Journal of Botany. 2019 ;14 .[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.sajb.2019.09.019
Vancouver
Silva CF da, Vitorino LC, Mendonça MAC, Araújo WL de, Ribeiro MND, Albuquerque LC de, Soares MA, Souchie EL. Screening of plant growth-promoting endophytic bacteria from the roots of the medicinal plant Aloe vera [Internet]. South African Journal of Botany. 2019 ;14 .[citado 2026 maio 03 ] Available from: https://doi.org/10.1016/j.sajb.2019.09.019