African Journal of
Biotechnology

  • Abbreviation: Afr. J. Biotechnol.
  • Language: English
  • ISSN: 1684-5315
  • DOI: 10.5897/AJB
  • Start Year: 2002
  • Published Articles: 12487

Full Length Research Paper

Water use efficiency in soybean crop after inoculation with Azospirillum brasiliense in the Cerrado of Tocantins State, Brazil

Evandro Reina
  • Evandro Reina
  • Biodiversity and Biotechnology Network of the Legal Amazon (BIONORTE), Federal University of Tocantins, Araguaína, Brazil.
  • Google Scholar
Joenes Mucci Peluzio
  • Joenes Mucci Peluzio
  • Biodiversity and Biotechnology Network of the Legal Amazon (BIONORTE), Federal University of Tocantins, Araguaína, Brazil.
  • Google Scholar


  •  Received: 14 July 2017
  •  Accepted: 18 September 2017
  •  Published: 27 September 2017

References

Antony E, Singandhupe RB (2004). Impact of drip and surface irrigation on growth, yield and WUE of capsicum (Capsicum annuum L.). Agric. Water Manage. 65:121-132.
Crossref

 

Bassani F, Braccini AL, Suzukawa AK, Mariucci GEG (2015). Agronomic performance of co-inoculation and modes of application of Bradyrhizobium japonicum and Azospirillum brasilense in soybean crop. Annals. In. VII Brazilian Soy Congress. Florianópolis, SC, Brazil.

 

Bulegon LG, Guimarães VF, Egewarth VA, Santos MG, Heling AL, Ferreira SD, Wengrat APGS, Battistus AG (2016). Growth and gaseous changes in the vegetative period of soybean inoculated with diazotrophic bacteria. Nativa 4(5):277-286.
Crossref

 

Cassán F, Sgroy V, Perrig D, Masciarelli O, Luna V (2008). Producción de fitohormonas por Azospirillum sp Aspectos fisiológicos y tecnológicos de la promoción del crecimiento vegetal. In. Cassán F. S., Garcia de Salamone I (eds) Azospirillum sp.: cell physiology, plant interactions and agronomic research in Argentina. Argentine Association of Microbiology, Argentina, pp. 59-84.

 

Cohen AC, Bottini R, Pontin M, Berli FJ, Moreno D, Boccanlandro H, Travaglia CN, Piccoli PN (2015). Azospirillum brasilense ameliorates the response of Arabidopsis thaliana to drought mainly via enhancement of ABA levels. Physiol. Plant. 153:79-90.
Crossref

 

Cohen AC, Travaglia C, Bottini R, Piccoli P (2009). Participation of abscisic acid and gibberellins produced by entophytic Azospirillum in the alleviation of drought effects in maize. Botany 87:455-462.
Crossref

 

Correa OS, Romero AM, Soria MA, de Estrada M (2008). Azospirillum brasilense-plant genotype interactions modify tomato response to bacterial diseases, and root and foliar microbial communities. In. Cassán FD, Garcia de Salamone I (eds) Azospirillum sp.: cell physiology, plant interactions and agronomic research in Argentina. Asociación Argentina de Microbiologia, Argentina, Pp. 85-94.

 

Cruz CD, Regazzi AJ (2004). Biometric models applied to genetic improvement. Viçosa, MG: Imprensa Universitária, P. 480.

 

Cruz SCS, Sena-Junior DG, Santos DMA, Lunezzo LO, Machado CG (2016) Soybean cultivation under different sowing densities and spatial arrangements. J. Neotrop. Agric. 3(1):1-6.

 

EMBRAPA - Brazilian Agricultural Research Company(2011). National Soil Research Center. Manual of soil analysis methods. 2.ed. rev. Rio de Janeiro.

 

EMBRAPA - Brazilian Agricultural Research Company (2013). Brazilian system of soil classification. Brasilia: Embrapa-SPI; Rio de Janeiro: Embrapa-Soil, 3 ed. 353p. ISBN 978-85-7035-198-2

 

EMBRAPA-Brazilian Agricultural Research Company (2016). Performance of Soybean Cultivars in the North Central Region of the State of Tocantins in the 2015/2016 harvest. Research and Development Bulletin / Embrapa Fishing and Aquaculture, Palmas, TO, 2016. 18p. ISSN 2358-6273; 11.

 

Ferreira DF (2011) Sisvar: A computer statistical analysis system. Sci. Agrotechnol. 35:1039-1042.
Crossref

 

Flexas J, Ribas-Carbó M, Diaz-Espejo A, Galmés J, Medrano H (2008). Mesophyll conductance to CO2: current knowledge and future prospects. Plant Cell Environ. 31:602-621.
Crossref

 

Gitti DC, Arf O, Kaneko FH, Rodrigues RAF, Buzetti S, Portugual JR, Corsin DCDC (2012). Inoculation of Azospirillum brasilense cul¬tivars of beans types in winter crop. Rev. Agra¬rian 5:36-46.

 

Hatfield JL, Boote KJ, Kimball BA, Ziska LH, Izaurralde RC, Ort D, Thomson AM, Wolfe D (2011). Climate Impacts on Agriculture: Implications for Crop Production. USDA-ARS / UNL Faculty. Paper n.1350.
Crossref

 

Huergo LF, Monteiro RA, Bonatto AC, Rigo LU, Steffens MBR, Cruz LM, Chubatsu LS, Souza EM, Pedrosa FO (2008). Regulation of nitrogen fixation in Azospirillum brasilense. In. Cassán FD, García de Salamone I (eds) Azospirillum sp.: cell physiology, plant interactions and agronomic research in Argentina. Asociación Argentina de Microbiologia, Argentina, pp. 17-36.

 

Hungria M (2011). Inoculation with Azospirillum brasilense: innovation in low cost yield. Londrina: Soy Embrapa, 36p.

 

Khan MI, Iqbal N, Masood A, Per TS, Khan NA (2013). Salicylic acid alleviates adverse effects of heat stress on photosynthesis through changes in proline production and ethylene formation. Plant Signal Behav. 8:263-274.
Crossref

 

Ku YS, Au-Yeung WK, Yung KL, Li MH, Wen CQ, Liu X (2013). Drought stress and tolerance in soybean. In: Board, J. E. (Ed.). A comprehensive survey of international Soybean Research Genetics, Physiology, Agronomy and Nitrogen Relationship. In Tech. Pp. 209-237.
Crossref

 

Lauteri M, Haworth M, Serraj R, Monteverdi MC, Centritto M (2014). Photosynthetic Diffusional Constraints Affect Yield in Drought Stressed Rice Cultivars during Flowering. PLoS One 9(10):e109054.
Crossref

 

Maes WH, Achten WM, Reubens B, Raes D, Samson R, Muys B (2009). Plant–water relationships and growth strategies of Jatropha curcas L. saplings under different levels of drought stress. J. Arid Environ. 73:877-884.
Crossref

 

Mencuccini M, Mambelli S, Comstock J (2000). Stomatal responsiveness to leaf water status in common bean (Phaseolus vulgaris L.) is a function of time of day. Plant Cell Environ. 23:1109-1118.
Crossref

 

Muller TM, Sandini IE, Rodrigues JD, Novakowiski JH, Basi S, Kaminski TH (2016). Combination of inoculation methods of Azospirilum brasilense with broadcasting of nitrogen fertilizer increases corn yield. Cienc. Rural 46(2):210-215.
Crossref

 

National Institute of Meteorology (INMET)(2016). Disponível em. 

View

 

Neto FJD, Yoshimi FK, Garcia RD, Miyamoto YR, Domingues MCS (2013). Development and productivity of green corn in response to leaf application with azospirillum brasilense. Biosphere Reserve, Knowing Scientific Center - Goiânia, 9:17.

 

Nonato JJ (2016). Nutrition, physiology and productivity of soybean inoculated with Azospirillum brasilense and plant regulators. Dissertation, State University of the Center-West, Graduate Program in Agronomy.

 

Procópio SO, Santos JB, Silva AA, Donagemma GK, Mendonça ES (2004). Permanent wilting point of soybeans, beans and weeds. Planta Daninha 22(1):35-41.
Crossref

 

Ramos HMM, Bastos EA, Cardoso MJ, Ribeiro VQ, Nascimento FN (2014). Produtividade de grãos verdes do feijão-caupi sob diferentes regimes hídricos. Eng. Agríc. 34(4):683-694.
Crossref

 

Rodrigues JD, Fioreze SL (2015). Regulators are, for many crops, indispensable to reach good levels. Rev. Visão Agríc. 13:35-39.

 

Rodrigues LFOS, Guimarães VF, Silva MB, Junior ASP, Klein J, Costa ACPR (2014). Agronomic characteristics of wheat as a function of Azospirillum brasilense, humic acids and nitrogen in a greenhouse. Rev. Bras. Eng. Agríc. Ambient.18(1):31-37.
Crossref

 

Roza FA (2010). Alteracões morfofisiologicas e eficiência de uso da agua em plantas de Jatropha curcas L. submetidas à deficiência hidrica / Francisvaldo Amaral Roza. –Dissertação, Ilheus, BA: UESC.

 

Scapim CA, Carvalho CGP, Cruz CD (1995). A proposal to classify the coefficients of variation for the maize crop. Pesq. Agropec. Bras. 30(5):683-686.

 

Serraj R, Sinclair TR (2002). Osmolyte accumulation: can it really help increase crop yield under drought conditions? Plant Cell Environ. 25:333-341.
Crossref

 

Sharma S, Verslues PE (2010). Mechanisms independent of abscisic acid (ABA) or proline feedback have a predominant role in transcriptional regulation of proline metabolism during low water potential and stress recovery. Plant Cell Environ 33:1838-1851.
Crossref

 

Soares LA dos A, Furtado GF, Andrade EMG, Sousa JRM, Guerra HOC, Nascimento R (2013). CO2 exchange of cowpea irrigated with saline water and nitrogen fertilization. Acsa Agropecuária Científica No Semi-Árido 9(3):30-37.

 

Tatagiba SD, Pezzopane JEM, Reis EF (2008). Water relations and gas exchange in the early selection of eucalyptus clones for environments with different water availability in the soil. Floresta Ambient. 38:2.

 

Von Caemmerer SV, Farquhar GD (1981). Some relationships between the biochemistry of photosynthesis and the gas exchange of leaves. Planta 153:376-387.
Crossref

 

Zuffo AM, Bruzi AT, Rezende PM, Carvalho MLM, Zambiazzi EV, Soares IO, Silva KB (2016). Foliar application of Azospirillum brasilense in soybean and seed physiological quality. Afr. J. Microbiol. Res. 10(20):675-680.
Crossref