African Journal of
Agricultural Research

  • Abbreviation: Afr. J. Agric. Res.
  • Language: English
  • ISSN: 1991-637X
  • DOI: 10.5897/AJAR
  • Start Year: 2006
  • Published Articles: 6860

Full Length Research Paper

Trichoderma asperellum (UFT201) functions as a growth promoter for soybean plant

Aloisio Freitas Chagas Junior
  • Aloisio Freitas Chagas Junior
  • Department of Agricultural Sciences and Technology, Federal University of Tocantins (UFT), Rua Badejós, CEP 7740-2970 Gurupi, Tocantins, Brazil.
  • Google Scholar
Lillian França Borges Chagas
  • Lillian França Borges Chagas
  • Department of Agricultural Sciences and Technology, Federal University of Tocantins (UFT), Rua Badejós, CEP 7740-2970 Gurupi, Tocantins, Brazil.
  • Google Scholar
Brigitte Sthepani Orozco Colonia
  • Brigitte Sthepani Orozco Colonia
  • Department of Agricultural Sciences and Technology, Federal University of Tocantins (UFT), Rua Badejós, CEP 7740-2970 Gurupi, Tocantins, Brazil.
  • Google Scholar
Luciane de Oliveira Miller
  • Luciane de Oliveira Miller
  • Department of Phytopathology, JCO Fertilizers and Bioproducts Company, CEP 4780-1651 Vila Nova, Barreiras, Bahia, Brazil.
  • Google Scholar
José Claudio de Oliveira
  • José Claudio de Oliveira
  • Department of Phytopathology, JCO Fertilizers and Bioproducts Company, CEP 4780-1651 Vila Nova, Barreiras, Bahia, Brazil.
  • Google Scholar


  •  Received: 27 February 2019
  •  Accepted: 05 August 2019
  •  Published: 31 October 2019

References

Asuming-Brempong S (2013). Phosphate solubilizing microorganisms and their ability to influence yield of rice. Agricultural Science Research Journal 3(12):379-386.

 

Chagas LFB, Chagas Junior AF, Carvalho MRC, Miller LO, Colonia BSO (2015). Evaluation of the phosphate solubilization potential of Trichoderma strains (Trichoplus JCO) and effects on rice biomass. Journal Soil Science and Plant Nutrition 15(3):794-804.

 

Chagas LFB, Castro HG, Colonia BSO, Carvalho Filho MO, Miller LO, Chagas Junior AF (2016). Efficiency of the inoculation of Trichoderma asperellum UFT-201 in cowpea production components under growth conditions in field. Revista de Ciências Agrárias 39(3):413-421.
Crossref

 

Chagas LFB, Chagas Junior AF, Fidelis RR, Carvalho Filho MR, Miller LO (2017a). Trichoderma asperellum efficiency in soybean yield components. Comunicata Scientiae 8(1):165-169.
Crossref

 

Chagas LFB, Colonia BSO, Santos GR, Scheidt GN, Portella ACF, Soares LP, Chagas Junior AF (2017b). Rice growth influence by Trichoderma spp. with natural phosphate fertilization under greenhouse conditions. International Journal of Development Research 7(6):13147-13152.

 

Contreras-Cornejo HA, Rodriquez L, Del-Val E, Larsen J (2016). Ecological functions of Trichoderma spp. and their secondary metabolites in the rhizosphere: interactions with plants. FEMS Microbiology Ecology 92(3):1-17.
Crossref

 

Embrapa (2009). Manual de análises químicas de solos, plantas e fertilizantes. EMBRAPA. 2a Ed., Rio de Janeiro, 627 p.

 

França DVC, Kupper KC, Magri MMR, Gomes TM, Rossi F (2017). Trichoderma spp. isolates with potential of phosphate solubilization and growth promotion in cherry tomato. Pesquisa Agropecuária Tropical 47(4):360-368.
Crossref

 

Gava CAT, Menezes MEL (2012). Eficiência de isolados de Trichoderma spp. no controle de patógenos de solo em meloeiro amarelo. Revista Ciências Agronômica 43(4):633-640.
Crossref

 

Gonçalves AH, Chagas LFB, Santos GR, Fidelis RR, Carvalho Filho MR, Miller LO, Chagas Junior AF (2018). Trichoderma efficiency in the maintenance and productivity of soybean plants in producing savanna regions, Tocantins, Brazil. Revista de Ciências Agrárias 41:175-181.
Crossref

 

Guareschi RF, Perin A, Macagnan D, Tramontini A, Gazolla PR (2012). Emprego de Trichoderma spp. no controle de Sclerotinia sclerotiorum e na promoção de crescimento vegetativo nas culturas de girassol e soja. Global Science and Technology 5(2):01-08.

 

Herrera-Jiménez E, Alarcón A, Larsen J, Ferrera-Cerrato R, Cruz-Izquierdo S, Ferrera-Rodríguez MR (2018). Comparative effects of two indole-producing Trichoderma strains and two exogenous phytohormones on the growth of Zea mays L., with or without tryptophan. Journal of Soil Science and Plant Nutrition 18(1):188-201.
Crossref

 

Hermosa R, Belén RM, Cardoza RE, Nicholas C, Hill E, Gutierrez S (2013). The contribution of Trichoderma to balancing the costs of plant growth and defense. International Microbiology 16(2):69-80.

 

Iq WZ, Zhao L (2013). Study of the siderophore-producing Trichoderma asperellum Q1 on cucumber under salt stress growth promotion. J of Basic Microbiology 53:355-64.

 

Machado DFM, Parzianello RF, Silva ACF, Antoniolli ZI (2012). Trichoderma no Brasil: O Fungo e Bioagente. Revista de Ciências Agrárias 35(1):274-288.

 

Martinez B, Infant D, Reyes Y (2013). Trichoderma spp. y su función in el control de plagas en loscultivos. Revistade Protección Vegetal. 28(1):1-11.

 

Milanesi PM, Blume E, Muniz MFB, Reiniger LRS, Antoniolli ZI, Junges E, Lupatini M (2013). Detecção de Fusarium spp. e Trichoderma spp. e antagonismo de Trichoderma sp. em soja sob plantio direto. Semina: Ciências Agrárias 34(6):3219-3234.
Crossref

 

Oliveira AG, Chagas Junior AF, Santos GR, Miller LO, Chagas LFB (2012). Potencial de solubilização de fosfato e produção de AIA por Trichoderma spp. Revista Verde de Agricultura e Desenvolvimento Sustentável 7(3):149-155.

 

Pedro EAS, Harakava R, Lucon CMM, Guzzo SD (2012). Promoção do crescimento do feijoeiro e controle da antracnose por Trichoderma spp. Pesquisa Agropecuária Brasileira 47(11):1589-1595.
Crossref

 

Rubio MB, Quijada NM, Perez E, Dominguez S, Hill E, Hermosa R (2014). Identifying beneficial qualities of Trichoderma parareesei for plants. Applied Environmental Microbiology 80(6):1864-1873.
Crossref

 

Rubio MB, Hermosa R, Vicente R, Gómez-Acosta FA, Morcuende R, Monte E, Bettiol W (2017). The Combination of Trichoderma harzianum and chemical fertilization leads to the deregulation of phytohormone networking, preventing the adaptive responses of tomato plants to salt stress. Frontiers in Plant Science 8:1-14.
Crossref

 

Santos HA, Mello SCM, Peixoto JR (2010). Associação de isolados de Trichoderma spp. e ácido indol-3-butírico (AIB) na promoção de enraizamento de estacas e crescimento de maracujazeiro. Bioscience Journal 26(6):966-972.

 

Studholme DJ, Harris B, Le Cocq K (2013). Investigating the beneficial traits of Trichoderma hamatum GD12 for sustainable agriculture - insights from genomics. Frontiers in Plant Science 4:1-13.
Crossref

 

Vinale F, Nigro M, Sivasithamparam K, Flematti G, Ghisalberti EL, Ruocco M, Varlese R, Marra R, Lanzuise S, Hub A, Woo SL, Lorito M (2013). Harzianic acid: a novel siderophore from Trichoderma harzianum. FEMS Microbiology Letters 347(2):123-129.
Crossref

 

Woo SL, Ruocco M, Vinale F, Nigro M, Marra R, Lombardi N, Pascale A, Lanzuise S, Manganiello G, Lorito M (2014). Trichoderma-based products and their widespread use in agriculture. The Open Mycology Journal 8:71-126.
Crossref

 

Zhang F, Yuan J, Yang X, Cui Y, Chen L, Ran W, Shen Q (2013). Putative Trichoderma harzianum mutant promotes cucumber growth by enhanced production of indole acetic acid and plant colonization. Plant and Soil 368(1-2):433-44.
Crossref