African Journal of
Agricultural Research

  • Abbreviation: Afr. J. Agric. Res.
  • Language: English
  • ISSN: 1991-637X
  • DOI: 10.5897/AJAR
  • Start Year: 2006
  • Published Articles: 6865

Full Length Research Paper

Bacillus subtilis UFMT-Pant001 as a plant growth promoter in soybean in a greenhouse

Marco Antonio Camillo de Carvalho
  • Marco Antonio Camillo de Carvalho
  • Mato Grosso State University, UNEMAT, Alta Floresta, MT, Brazil.
  • Google Scholar
Marco Eustáquio de Sá
  • Marco Eustáquio de Sá
  • São Paulo State University, UNESP, Ilha Solteira, SP, Brazil.
  • Google Scholar
Daniela Tiago da Silva Campos
  • Daniela Tiago da Silva Campos
  • Federal University of Mato Grosso, UFMT, Cuiabá, MT, Brazil.
  • Google Scholar
Alexandre Paulo Machado
  • Alexandre Paulo Machado
  • Federal University of Mato Grosso, UFMT, Cuiabá, MT, Brazil.
  • Google Scholar
Aloisio Freitas Chagas Junior
  • Aloisio Freitas Chagas Junior
  • Federal University of Tocantins, UFT, Gurupi, TO, Brazil.
  • Google Scholar


  •  Received: 02 October 2022
  •  Accepted: 12 January 2023
  •  Published: 28 February 2023

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Braga GM, Chagas LFB, Amaral LRO, Miller LO, Chagas AF (2018) Efficiency of inoculation by Bacillus subtilis on soybean biomass and productivity. Revista Brasileira de Ciências Agrárias 13(4):e5571. 
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Chagas Junior AF, Chagas LFB, Martins ALL, Colonia BSO, Souza MC, Braga Junior GM (2021). Efficiency of Bacillus subtilis bs10 as a plant growth promoting inoculant in soybean crop under field conditions. Research, Society and Development 10(14):e441101422141. 
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Diaz PAE, Baron NC, Rigobelo EC (2019). Bacillus spp. as plant growth-promoting bacteria in cotton under greenhouse conditions. Australian Journal of Crop Science 13(12):2003-2014. 
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Henning AA (2009). Manejo de doenças da soja (Glycine max L. Merrill). Informativo ABRATES 19:9-12.

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Kalam S, Basu A, Podile AR (2020). Functional and molecular characterization of plant growth promoting Bacillus isolates from tomato rhizosphere. Heliyon 6(8):e04734. 
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Kalam S, Das SN, Basu A, Podile AR (2017). Population densities of indigenous acidobacteria change in the presence of plant growth promoting rhizobacteria (PGPR) in rhizosphere. Journal of Basic Microbiology 57(5):376-385. 
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Machado AP, Vivi KV, Tavares JR, Gueiros Filho FJ, Fischman O (2010). Antibiosis and dark-pigments secretion by the phytopathogenic and environmental fungal species after interaction in vitro with a Bacillus subtilis isolate. Brazilian Archives of Biology and Technology 53(5):997-1004.
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Malavolta E, Vitti GC, Oliveira SA (1997). Avaliação do estado nutricional das plantas: princípios e aplicações. Piracicaba: Potafós: 319 p.

 

Mardanova AM, Fanisovna Hadieva G, Tafkilevich Lutfullin M, Valer'evna Khilyas I, Farvazovna Minnullina L, Gadelevna Gilyazeva A (2017). Bacillus subtilis strains with antifungal activity against the phytopathogenic fungi. Agricultural Sciences 8(1):1-20. 
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Melo IS (2015). Rizobactérias Promotoras de Crescimento de Plantas: Descrição e Po-Tencial de Uso Na Agricultura. In: EMBRAPA Meio Ambiente, Ed., Ecologia Microbiana, Jaguariúna pp. 86-116.

 

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Saharan BS, Nehra V (2011). Plant growth promoting rhizobacteria: a critical review. Life Sciences and Medicine Research, 2021:1-30.

 

Saravanakumar K, Yu C, Dou K, Wang M, Li Y, Chen J (2016). Synergistic effect of Trichoderma-derived antifungal metabolites and cell wall degrading enzymes on enhanced biocontrol of Fusarium oxysporum f. sp. cucumerinum. Biological Control 94:37-46. 
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Saxena AK, Kumar M, Chakdar H, Anuroopa N, Bagyaraj DJ (2020). Bacillus species in soil as a natural resource for plant health and nutrition. Journal of Applied Microbiology 128(6):1583-1594. 
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Shafi J, Tian H, Ji M (2017). Bacillus Species as versatile weapons for plant pathogens: a review. Biotechnology and Biotechnological Equipment 31(3):446-459. 
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