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AZEVEDO, Ricardo Antunes. Significant changes to Annals of Applied Biology from 2025. Annals of Applied Biology. Hoboken: Escola Superior de Agricultura Luiz de Queiroz, Universidade de São Paulo. Disponível em: https://doi.org/10.1111/aab.12969. Acesso em: 04 dez. 2025. , 2025
APA
Azevedo, R. A. (2025). Significant changes to Annals of Applied Biology from 2025. Annals of Applied Biology. Hoboken: Escola Superior de Agricultura Luiz de Queiroz, Universidade de São Paulo. doi:10.1111/aab.12969
NLM
Azevedo RA. Significant changes to Annals of Applied Biology from 2025 [Internet]. Annals of Applied Biology. 2025 ; 186 4-5.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.12969
Vancouver
Azevedo RA. Significant changes to Annals of Applied Biology from 2025 [Internet]. Annals of Applied Biology. 2025 ; 186 4-5.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.12969
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GANIE, Showkat A e AZEVEDO, Ricardo Antunes. Why stress‐resistant crops remain a scientific promise rather than a farming reality?: Bridging the gap between genetic discovery and agricultural impact. Annals of Applied Biology, p. 1-5, 2025Tradução . . Disponível em: https://doi.org/10.1111/aab.70050. Acesso em: 04 dez. 2025.
APA
Ganie, S. A., & Azevedo, R. A. (2025). Why stress‐resistant crops remain a scientific promise rather than a farming reality?: Bridging the gap between genetic discovery and agricultural impact. Annals of Applied Biology, 1-5. doi:10.1111/aab.70050
NLM
Ganie SA, Azevedo RA. Why stress‐resistant crops remain a scientific promise rather than a farming reality?: Bridging the gap between genetic discovery and agricultural impact [Internet]. Annals of Applied Biology. 2025 ; 1-5.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.70050
Vancouver
Ganie SA, Azevedo RA. Why stress‐resistant crops remain a scientific promise rather than a farming reality?: Bridging the gap between genetic discovery and agricultural impact [Internet]. Annals of Applied Biology. 2025 ; 1-5.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.70050
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MOTA, Layna Amorim et al. Selenium-biofortified spent yeast cultivated in corn hydrolysate: antioxidant response and biomass production under aerobic and anaerobic conditions. International Microbiology, p. 1-16, 2025Tradução . . Disponível em: https://doi.org/10.1007/s10123-025-00722-y. Acesso em: 04 dez. 2025.
APA
Mota, L. A., Calegari, R. P., Pinto, A. U., Sica, P. M. de S., Amorim, D. J., Azevedo, R. A., et al. (2025). Selenium-biofortified spent yeast cultivated in corn hydrolysate: antioxidant response and biomass production under aerobic and anaerobic conditions. International Microbiology, 1-16. doi:10.1007/s10123-025-00722-y
NLM
Mota LA, Calegari RP, Pinto AU, Sica PM de S, Amorim DJ, Azevedo RA, Gaziola SA, Douradinho RS, Baptista AS, Arthur V. Selenium-biofortified spent yeast cultivated in corn hydrolysate: antioxidant response and biomass production under aerobic and anaerobic conditions [Internet]. International Microbiology. 2025 ; 1-16.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s10123-025-00722-y
Vancouver
Mota LA, Calegari RP, Pinto AU, Sica PM de S, Amorim DJ, Azevedo RA, Gaziola SA, Douradinho RS, Baptista AS, Arthur V. Selenium-biofortified spent yeast cultivated in corn hydrolysate: antioxidant response and biomass production under aerobic and anaerobic conditions [Internet]. International Microbiology. 2025 ; 1-16.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s10123-025-00722-y
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LAVRES JUNIOR, José et al. Thirsty for solutions: how potassium drives sugarcane s varietal-specific strategies for drought tolerance. Plant Physiology and Biochemistry, v. 223, p. 1-17, 2025Tradução . . Disponível em: https://doi.org/10.1016/j.plaphy.2025.109791. Acesso em: 04 dez. 2025.
APA
Lavres Junior, J., Moraes, F. V. A. de, Mateus, N. S., Oliveira, J. B., Nerastri, L. P., Gaziola, S. A., et al. (2025). Thirsty for solutions: how potassium drives sugarcane s varietal-specific strategies for drought tolerance. Plant Physiology and Biochemistry, 223, 1-17. doi:10.1016/j.plaphy.2025.109791
NLM
Lavres Junior J, Moraes FVA de, Mateus NS, Oliveira JB, Nerastri LP, Gaziola SA, Mazzafera P, Azevedo RA, Jordan-Meille L. Thirsty for solutions: how potassium drives sugarcane s varietal-specific strategies for drought tolerance [Internet]. Plant Physiology and Biochemistry. 2025 ; 223 1-17.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1016/j.plaphy.2025.109791
Vancouver
Lavres Junior J, Moraes FVA de, Mateus NS, Oliveira JB, Nerastri LP, Gaziola SA, Mazzafera P, Azevedo RA, Jordan-Meille L. Thirsty for solutions: how potassium drives sugarcane s varietal-specific strategies for drought tolerance [Internet]. Plant Physiology and Biochemistry. 2025 ; 223 1-17.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1016/j.plaphy.2025.109791
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THIENGO, Cássio Carlette et al. Harnessing plant growth-promoting bacteria (Herbaspirillum seropedicae) from an optimal mineral nitrogen supply: A study on improving nitrogen use efficiency in marandu palisadegrass. Plant Physiology and Biochemistry, v. 220, p. 1-14, 2025Tradução . . Disponível em: https://doi.org/10.1016/j.plaphy.2025.109497. Acesso em: 04 dez. 2025.
APA
Thiengo, C. C., Galindo, F. S., Rodak, B. W., Bernardes, J. V. S., Rocha, L. O. da, Gaziola, S. A., et al. (2025). Harnessing plant growth-promoting bacteria (Herbaspirillum seropedicae) from an optimal mineral nitrogen supply: A study on improving nitrogen use efficiency in marandu palisadegrass. Plant Physiology and Biochemistry, 220, 1-14. doi:10.1016/j.plaphy.2025.109497
NLM
Thiengo CC, Galindo FS, Rodak BW, Bernardes JVS, Rocha LO da, Gaziola SA, Azevedo RA, Burak DL, Olivares FL, Lavres Junior J. Harnessing plant growth-promoting bacteria (Herbaspirillum seropedicae) from an optimal mineral nitrogen supply: A study on improving nitrogen use efficiency in marandu palisadegrass [Internet]. Plant Physiology and Biochemistry. 2025 ; 220 1-14.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1016/j.plaphy.2025.109497
Vancouver
Thiengo CC, Galindo FS, Rodak BW, Bernardes JVS, Rocha LO da, Gaziola SA, Azevedo RA, Burak DL, Olivares FL, Lavres Junior J. Harnessing plant growth-promoting bacteria (Herbaspirillum seropedicae) from an optimal mineral nitrogen supply: A study on improving nitrogen use efficiency in marandu palisadegrass [Internet]. Plant Physiology and Biochemistry. 2025 ; 220 1-14.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1016/j.plaphy.2025.109497
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LIMA, Iasmim Lopes de et al. 4D-DIA Proteomics Uncovers New Insights into Host Salivary Response Following SARS-CoV-2 Omicron Infection. Journal of Proteome Research, v. 24, 2025Tradução . . Disponível em: https://doi.org/10.1021/acs.jproteome.4c00630. Acesso em: 04 dez. 2025.
APA
Lima, I. L. de, Cataldi, T. R., Brites, C., Labate, M. T. V., Vaz, S. N., Deminco, F., et al. (2025). 4D-DIA Proteomics Uncovers New Insights into Host Salivary Response Following SARS-CoV-2 Omicron Infection. Journal of Proteome Research, 24. doi:10.1021/acs.jproteome.4c00630
NLM
Lima IL de, Cataldi TR, Brites C, Labate MTV, Vaz SN, Deminco F, Cunha GS da, Labate CA, Eberlin MN. 4D-DIA Proteomics Uncovers New Insights into Host Salivary Response Following SARS-CoV-2 Omicron Infection [Internet]. Journal of Proteome Research. 2025 ; 24[citado 2025 dez. 04 ] Available from: https://doi.org/10.1021/acs.jproteome.4c00630
Vancouver
Lima IL de, Cataldi TR, Brites C, Labate MTV, Vaz SN, Deminco F, Cunha GS da, Labate CA, Eberlin MN. 4D-DIA Proteomics Uncovers New Insights into Host Salivary Response Following SARS-CoV-2 Omicron Infection [Internet]. Journal of Proteome Research. 2025 ; 24[citado 2025 dez. 04 ] Available from: https://doi.org/10.1021/acs.jproteome.4c00630
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MIRANDA, Melissa Cristina de Carvalho et al. High‐throughput phenotyping and machine learning techniques in soybean breeding: Exploring the potential of aerial imaging and vegetation indices. Agronomy Journal, v. 117, p. 1-25, 2025Tradução . . Disponível em: https://doi.org/10.1002/agj2.70012. Acesso em: 04 dez. 2025.
APA
Miranda, M. C. de C., Aono, A. H., Fagundes, T. G., Arduini, G. M., & Pinheiro, J. B. (2025). High‐throughput phenotyping and machine learning techniques in soybean breeding: Exploring the potential of aerial imaging and vegetation indices. Agronomy Journal, 117, 1-25. doi:10.1002/agj2.70012
NLM
Miranda MC de C, Aono AH, Fagundes TG, Arduini GM, Pinheiro JB. High‐throughput phenotyping and machine learning techniques in soybean breeding: Exploring the potential of aerial imaging and vegetation indices [Internet]. Agronomy Journal. 2025 ; 117 1-25.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1002/agj2.70012
Vancouver
Miranda MC de C, Aono AH, Fagundes TG, Arduini GM, Pinheiro JB. High‐throughput phenotyping and machine learning techniques in soybean breeding: Exploring the potential of aerial imaging and vegetation indices [Internet]. Agronomy Journal. 2025 ; 117 1-25.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1002/agj2.70012
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PENTERICHE, Augusto Bartz e GALLAN, Diego Zanardo e SILVA-FILHO, Marcio de Castro. Is it time to shift towards multifactorial biotic stress in plant research?. Plant Stress, v. 17, p. 1-9, 2025Tradução . . Disponível em: https://www.sciencedirect.com/science/article/pii/S2667064X25002313. Acesso em: 04 dez. 2025.
APA
Penteriche, A. B., Gallan, D. Z., & Silva-Filho, M. de C. (2025). Is it time to shift towards multifactorial biotic stress in plant research? Plant Stress, 17, 1-9. doi:10.1016/j.stress.2025.100963
NLM
Penteriche AB, Gallan DZ, Silva-Filho M de C. Is it time to shift towards multifactorial biotic stress in plant research? [Internet]. Plant Stress. 2025 ; 17 1-9.[citado 2025 dez. 04 ] Available from: https://www.sciencedirect.com/science/article/pii/S2667064X25002313
Vancouver
Penteriche AB, Gallan DZ, Silva-Filho M de C. Is it time to shift towards multifactorial biotic stress in plant research? [Internet]. Plant Stress. 2025 ; 17 1-9.[citado 2025 dez. 04 ] Available from: https://www.sciencedirect.com/science/article/pii/S2667064X25002313
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MARTINS, Maria et al. How do plants cope with drought and metal co‐exposure?: an unexplored field to unravel. Annals of Applied Biology, p. 1-10, 2025Tradução . . Disponível em: https://doi.org/10.1111/aab.70009. Acesso em: 04 dez. 2025.
APA
Martins, M., Soares, C., Azevedo, R. A., & Fidalgo, F. (2025). How do plants cope with drought and metal co‐exposure?: an unexplored field to unravel. Annals of Applied Biology, 1-10. doi:10.1111/aab.70009
NLM
Martins M, Soares C, Azevedo RA, Fidalgo F. How do plants cope with drought and metal co‐exposure?: an unexplored field to unravel [Internet]. Annals of Applied Biology. 2025 ; 1-10.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.70009
Vancouver
Martins M, Soares C, Azevedo RA, Fidalgo F. How do plants cope with drought and metal co‐exposure?: an unexplored field to unravel [Internet]. Annals of Applied Biology. 2025 ; 1-10.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.70009
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MORAIS, Gabriela Corrêa et al. Leaf traits and intraspecific niche models support two main botanical varieties of Hancornia speciosa Gomes (Apocynaceae). Genetic Resources and Crop Evolution, p. 1-23, 2025Tradução . . Disponível em: https://doi.org/10.1007/s10722-025-02607-5. Acesso em: 04 dez. 2025.
APA
Morais, G. C., Francisconi, A. F., Chaves, L. J., Ganga, R. M. D., Resende, R. T., Oliveira, G. C. X., & Zucchi, M. I. (2025). Leaf traits and intraspecific niche models support two main botanical varieties of Hancornia speciosa Gomes (Apocynaceae). Genetic Resources and Crop Evolution, 1-23. doi:10.1007/s10722-025-02607-5
NLM
Morais GC, Francisconi AF, Chaves LJ, Ganga RMD, Resende RT, Oliveira GCX, Zucchi MI. Leaf traits and intraspecific niche models support two main botanical varieties of Hancornia speciosa Gomes (Apocynaceae) [Internet]. Genetic Resources and Crop Evolution. 2025 ; 1-23.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s10722-025-02607-5
Vancouver
Morais GC, Francisconi AF, Chaves LJ, Ganga RMD, Resende RT, Oliveira GCX, Zucchi MI. Leaf traits and intraspecific niche models support two main botanical varieties of Hancornia speciosa Gomes (Apocynaceae) [Internet]. Genetic Resources and Crop Evolution. 2025 ; 1-23.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s10722-025-02607-5
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AZEVEDO, Ricardo Antunes de. Thank you—Annals of Applied Biology. Annals of Applied Biology. Hoboken, NJ: Escola Superior de Agricultura Luiz de Queiroz, Universidade de São Paulo. Disponível em: https://doi.org/10.1111/aab.70061. Acesso em: 04 dez. 2025. , 2025
APA
Azevedo, R. A. de. (2025). Thank you—Annals of Applied Biology. Annals of Applied Biology. Hoboken, NJ: Escola Superior de Agricultura Luiz de Queiroz, Universidade de São Paulo. doi:10.1111/aab.70061
NLM
Azevedo RA de. Thank you—Annals of Applied Biology [Internet]. Annals of Applied Biology. 2025 ; 1-2.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.70061
Vancouver
Azevedo RA de. Thank you—Annals of Applied Biology [Internet]. Annals of Applied Biology. 2025 ; 1-2.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1111/aab.70061
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GOMES, Ana Flávia Freitas et al. Metabolomics of susceptible and insecticide-resistant strains of Spodoptera frugiperda (Lepidoptera: Noctuidae) and metatranscriptomics of their midgut-associated microbiota. Pesticide Biochemistry and Physiology, v. 215, p. 1-18, 2025Tradução . . Disponível em: https://doi.org/10.1016/j.pestbp.2025.106697. Acesso em: 04 dez. 2025.
APA
Gomes, A. F. F., Cataldi, T. R., Labate, C. A., Omoto, C., & Cônsoli, F. L. (2025). Metabolomics of susceptible and insecticide-resistant strains of Spodoptera frugiperda (Lepidoptera: Noctuidae) and metatranscriptomics of their midgut-associated microbiota. Pesticide Biochemistry and Physiology, 215, 1-18. doi:10.1016/j.pestbp.2025.106697
NLM
Gomes AFF, Cataldi TR, Labate CA, Omoto C, Cônsoli FL. Metabolomics of susceptible and insecticide-resistant strains of Spodoptera frugiperda (Lepidoptera: Noctuidae) and metatranscriptomics of their midgut-associated microbiota [Internet]. Pesticide Biochemistry and Physiology. 2025 ; 215 1-18.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1016/j.pestbp.2025.106697
Vancouver
Gomes AFF, Cataldi TR, Labate CA, Omoto C, Cônsoli FL. Metabolomics of susceptible and insecticide-resistant strains of Spodoptera frugiperda (Lepidoptera: Noctuidae) and metatranscriptomics of their midgut-associated microbiota [Internet]. Pesticide Biochemistry and Physiology. 2025 ; 215 1-18.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1016/j.pestbp.2025.106697
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RUAS, Paulo Maurício et al. Maize B chromosome affects the flowering time. Theoretical and Applied Genetics, v. 138, p. 1-17, 2025Tradução . . Disponível em: https://doi.org/10.1007/s00122-025-04862-7. Acesso em: 04 dez. 2025.
APA
Ruas, P. M., Mondin, M., Garcia, A. A. F., & Perecin, M. L. R. de A. (2025). Maize B chromosome affects the flowering time. Theoretical and Applied Genetics, 138, 1-17. doi:10.1007/s00122-025-04862-7
NLM
Ruas PM, Mondin M, Garcia AAF, Perecin MLR de A. Maize B chromosome affects the flowering time [Internet]. Theoretical and Applied Genetics. 2025 ; 138 1-17.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s00122-025-04862-7
Vancouver
Ruas PM, Mondin M, Garcia AAF, Perecin MLR de A. Maize B chromosome affects the flowering time [Internet]. Theoretical and Applied Genetics. 2025 ; 138 1-17.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s00122-025-04862-7
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SOUZA, Leandro Fonseca de et al. Co-inoculation with Bacillus thuringiensis RZ2MS9 and rhizobia improves the soybean development and modulates soil functional diversity. FEMS Microbiology Ecology, v. 101, n. 2, p. 1-12, 2025Tradução . . Disponível em: https://doi.org/10.1093/femsec/fiaf013. Acesso em: 04 dez. 2025.
APA
Souza, L. F. de, Oliveira, H. G., Pellegrinetti, T. A., Mendes, L. W., Bonatelli, M. L., Dumaresq, A. S. R., et al. (2025). Co-inoculation with Bacillus thuringiensis RZ2MS9 and rhizobia improves the soybean development and modulates soil functional diversity. FEMS Microbiology Ecology, 101( 2), 1-12. doi:10.1093/femsec/fiaf013
NLM
Souza LF de, Oliveira HG, Pellegrinetti TA, Mendes LW, Bonatelli ML, Dumaresq ASR, Castillho VVS, Pinheiro JB, Azevedo JL, Verdi MCQ. Co-inoculation with Bacillus thuringiensis RZ2MS9 and rhizobia improves the soybean development and modulates soil functional diversity [Internet]. FEMS Microbiology Ecology. 2025 ; 101( 2): 1-12.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1093/femsec/fiaf013
Vancouver
Souza LF de, Oliveira HG, Pellegrinetti TA, Mendes LW, Bonatelli ML, Dumaresq ASR, Castillho VVS, Pinheiro JB, Azevedo JL, Verdi MCQ. Co-inoculation with Bacillus thuringiensis RZ2MS9 and rhizobia improves the soybean development and modulates soil functional diversity [Internet]. FEMS Microbiology Ecology. 2025 ; 101( 2): 1-12.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1093/femsec/fiaf013
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MARROQUÍN, Jonathan Andre Morales et al. Genetic variations associated with adaptation in Acrocomia palms: a comparative study across the Neotropics for crop improvement. PLos ONE, v. 20, n. 6, p. 1-28, 2025Tradução . . Disponível em: https://doi.org/10.1371/journal.pone.0324340. Acesso em: 04 dez. 2025.
APA
Marroquín, J. A. M., Alves-Pereira, A., Díaz-Hernández, B. G., Vianna, S. A., Batista, C. E. de A., Colombo, C. A., et al. (2025). Genetic variations associated with adaptation in Acrocomia palms: a comparative study across the Neotropics for crop improvement. PLos ONE, 20( 6), 1-28. doi:10.1371/journal.pone.0324340
NLM
Marroquín JAM, Alves-Pereira A, Díaz-Hernández BG, Vianna SA, Batista CE de A, Colombo CA, Pinheiro JB, Zucchi MI. Genetic variations associated with adaptation in Acrocomia palms: a comparative study across the Neotropics for crop improvement [Internet]. PLos ONE. 2025 ; 20( 6): 1-28.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1371/journal.pone.0324340
Vancouver
Marroquín JAM, Alves-Pereira A, Díaz-Hernández BG, Vianna SA, Batista CE de A, Colombo CA, Pinheiro JB, Zucchi MI. Genetic variations associated with adaptation in Acrocomia palms: a comparative study across the Neotropics for crop improvement [Internet]. PLos ONE. 2025 ; 20( 6): 1-28.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1371/journal.pone.0324340
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EVANGELISTA, Jeniffer Santana Pinto Coelho et al. Optimizing the single-step model for predicting fumonisins resistance in maize hybrids accounting for the genotype-by-environment interaction. Frontiers in Genetics, v. 16, p. 1-16, 2025Tradução . . Disponível em: https://doi.org/10.3389/fgene.2025.1475452. Acesso em: 04 dez. 2025.
APA
Evangelista, J. S. P. C., Dias, K. O. das G., Pastina, M. M., Chaves, S. F. da S., Guimarães, L. J. M., Hidalgo, J., et al. (2025). Optimizing the single-step model for predicting fumonisins resistance in maize hybrids accounting for the genotype-by-environment interaction. Frontiers in Genetics, 16, 1-16. doi:10.3389/fgene.2025.1475452
NLM
Evangelista JSPC, Dias KO das G, Pastina MM, Chaves SF da S, Guimarães LJM, Hidalgo J, Garcia-Abadillo J, Persa R, Queiroz VAV, Silva DD da, Bhering LL, Jarquin D. Optimizing the single-step model for predicting fumonisins resistance in maize hybrids accounting for the genotype-by-environment interaction [Internet]. Frontiers in Genetics. 2025 ; 16 1-16.[citado 2025 dez. 04 ] Available from: https://doi.org/10.3389/fgene.2025.1475452
Vancouver
Evangelista JSPC, Dias KO das G, Pastina MM, Chaves SF da S, Guimarães LJM, Hidalgo J, Garcia-Abadillo J, Persa R, Queiroz VAV, Silva DD da, Bhering LL, Jarquin D. Optimizing the single-step model for predicting fumonisins resistance in maize hybrids accounting for the genotype-by-environment interaction [Internet]. Frontiers in Genetics. 2025 ; 16 1-16.[citado 2025 dez. 04 ] Available from: https://doi.org/10.3389/fgene.2025.1475452
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LONGATTO, Daniel Prezotto et al. The dual role of Bacillus thuringiensis RZ2MS9: its effectiveness as an entomopathogen and a plant growth promoter in vitro and in field conditions. Letters in Applied Microbiology, v. 78, n. 6, p. 1-10, 2025Tradução . . Disponível em: https://doi.org/10.1093/lambio/ovaf076. Acesso em: 04 dez. 2025.
APA
Longatto, D. P., Lorenzi, A. S., Oliveira, H. G., Rosa, M. S., Marcon, J., Azevedo, J. L., & Verdi, M. C. Q. (2025). The dual role of Bacillus thuringiensis RZ2MS9: its effectiveness as an entomopathogen and a plant growth promoter in vitro and in field conditions. Letters in Applied Microbiology, 78( 6), 1-10. doi:10.1093/lambio/ovaf076
NLM
Longatto DP, Lorenzi AS, Oliveira HG, Rosa MS, Marcon J, Azevedo JL, Verdi MCQ. The dual role of Bacillus thuringiensis RZ2MS9: its effectiveness as an entomopathogen and a plant growth promoter in vitro and in field conditions [Internet]. Letters in Applied Microbiology. 2025 ; 78( 6): 1-10.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1093/lambio/ovaf076
Vancouver
Longatto DP, Lorenzi AS, Oliveira HG, Rosa MS, Marcon J, Azevedo JL, Verdi MCQ. The dual role of Bacillus thuringiensis RZ2MS9: its effectiveness as an entomopathogen and a plant growth promoter in vitro and in field conditions [Internet]. Letters in Applied Microbiology. 2025 ; 78( 6): 1-10.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1093/lambio/ovaf076
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HUSEIN, Gustavo et al. Transcriptome profiling of resistance gene analogs in soybean s cross‐tolerance to water limitation and rust stress. Food and Energy Security, v. 14, p. 1-15, 2025Tradução . . Disponível em: https://doi.org/10.1002/fes3.70144. Acesso em: 04 dez. 2025.
APA
Husein, G., Maia, T., Moretti, F. R. R. de C., Nunes, J. D. K., Amorim, L., Mazzafera, P., et al. (2025). Transcriptome profiling of resistance gene analogs in soybean s cross‐tolerance to water limitation and rust stress. Food and Energy Security, 14, 1-15. doi:10.1002/fes3.70144
NLM
Husein G, Maia T, Moretti FRR de C, Nunes JDK, Amorim L, Mazzafera P, Nijveen H, Monteiro‐Vitorello CB. Transcriptome profiling of resistance gene analogs in soybean s cross‐tolerance to water limitation and rust stress [Internet]. Food and Energy Security. 2025 ; 14 1-15.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1002/fes3.70144
Vancouver
Husein G, Maia T, Moretti FRR de C, Nunes JDK, Amorim L, Mazzafera P, Nijveen H, Monteiro‐Vitorello CB. Transcriptome profiling of resistance gene analogs in soybean s cross‐tolerance to water limitation and rust stress [Internet]. Food and Energy Security. 2025 ; 14 1-15.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1002/fes3.70144
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
ALMEIDA, Rafael da Costa et al. Establishment and molecular validation of a lima bean (Phaseolus lunatus) core collection in Brazil. Plant Molecular Biology Reporter, v. 43, p. 286–294, 2025Tradução . . Disponível em: https://doi.org/10.1007/s11105-024-01486-x. Acesso em: 04 dez. 2025.
APA
Almeida, R. da C., Carvalho, L. C. B., Alves-Pereira, A., Penha, J. S. da, Silva, V. B. da, Zucchi, M. I., et al. (2025). Establishment and molecular validation of a lima bean (Phaseolus lunatus) core collection in Brazil. Plant Molecular Biology Reporter, 43, 286–294. doi:10.1007/s11105-024-01486-x
NLM
Almeida R da C, Carvalho LCB, Alves-Pereira A, Penha JS da, Silva VB da, Zucchi MI, Pinheiro JB, Martínez-Castillo J, Lopes ÂC de A, Gomes RLF. Establishment and molecular validation of a lima bean (Phaseolus lunatus) core collection in Brazil [Internet]. Plant Molecular Biology Reporter. 2025 ; 43 286–294.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s11105-024-01486-x
Vancouver
Almeida R da C, Carvalho LCB, Alves-Pereira A, Penha JS da, Silva VB da, Zucchi MI, Pinheiro JB, Martínez-Castillo J, Lopes ÂC de A, Gomes RLF. Establishment and molecular validation of a lima bean (Phaseolus lunatus) core collection in Brazil [Internet]. Plant Molecular Biology Reporter. 2025 ; 43 286–294.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s11105-024-01486-x
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
MONDIN, Mateus et al. Karyotype and genome size of Brazil nut (Bertholletia excelsa, Lecythidaceae): a technical note. Tree Genetics & Genomes, v. 21, p. 1-7, 2025Tradução . . Disponível em: https://doi.org/10.1007/s11295-025-01709-6. Acesso em: 04 dez. 2025.
APA
Mondin, M., Chiriboga-Arroyo, F., Martins, K., Kettle, C. J., & Silva, G. F. (2025). Karyotype and genome size of Brazil nut (Bertholletia excelsa, Lecythidaceae): a technical note. Tree Genetics & Genomes, 21, 1-7. doi:10.1007/s11295-025-01709-6
NLM
Mondin M, Chiriboga-Arroyo F, Martins K, Kettle CJ, Silva GF. Karyotype and genome size of Brazil nut (Bertholletia excelsa, Lecythidaceae): a technical note [Internet]. Tree Genetics & Genomes. 2025 ; 21 1-7.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s11295-025-01709-6
Vancouver
Mondin M, Chiriboga-Arroyo F, Martins K, Kettle CJ, Silva GF. Karyotype and genome size of Brazil nut (Bertholletia excelsa, Lecythidaceae): a technical note [Internet]. Tree Genetics & Genomes. 2025 ; 21 1-7.[citado 2025 dez. 04 ] Available from: https://doi.org/10.1007/s11295-025-01709-6