Chitosan application in the induction of water deficit tolerance in maize plants

  • Lorena Gabriela Almeida Universidade Federal de Lavras http://orcid.org/0000-0002-2018-2206
  • Paulo César Magalhães Empresa Brasileira de Pesquisa Agropecuaria
  • Décio Karam Empresa Brasileira de Pesquisa Agropecuária
  • Eder Marcos da Silva Universidade Federal de Lavras
  • Amauri Alves Alvarenga Universidade Federal de Lavras
Palavras-chave: antiperspirant; antioxidant enzymes; water stress; gas exchange.

Resumo

The present research seeks to elucidate the feasibility of chitosan (CHT) in the induction of water deficit tolerance in different maize hybrids, contrasting tolerance to water restriction, tolerance and sensitivity. The maize plants were subjected to water deficit and foliar application of different chitosan doses (60, 100, 140, and 180 mg L-1) at the pre-flowering growth stage and evaluated during the stress period of fifteen days. To understand the induction behaviour of the tolerance to water restriction, biophysical parameters, such as water potential, relative water content and chlorophyll content, gas exchange, and biochemical assays, were quantified based on the activity of SOD, CAT, APX, and PAL antioxidant enzymes, lipid peroxidation activity and hydrogen peroxide content. Among the treatments, maize plants subjected to chitosan foliar application at a dose of 140 mg L-1 presented similar behavioural responses to plants under favourable irrigation conditions. Such positive responses are related to the high degree of activity of antioxidant enzymes, gas exchange and low levels of lipid peroxidation and hydrogen peroxide. The results support the potential use of CHT to increase tolerance to water stress.

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Publicado
2019-11-20
Como Citar
Almeida, L. G., Magalhães, P. C., Karam, D., Silva, E. M. da, & Alvarenga, A. A. (2019). Chitosan application in the induction of water deficit tolerance in maize plants. Acta Scientiarum. Agronomy, 42(1), e42463. https://doi.org/10.4025/actasciagron.v42i1.42463
Seção
Produção Vegetal

 

2.0
2019CiteScore
 
 
60th percentile
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2.0
2019CiteScore
 
 
60th percentile
Powered by  Scopus