Identification of adaptive traits and mechanisms in tropical soybean lines under drought stress from flowering to pod formation
Abstract
Drought stress reduces soybean [Glycine max (L.)] yield stability in tropical environments, particularly from flowering to pod formation. This study aimed to identify adaptive traits and underlying mechanisms of tropical soybean lines under water-limited conditions, as well as to assess the selection potential under non-stress environments. Twenty-five high-yield soybean genotypes carrying the long juvenile (lj) and pod dehiscence1 (pdh1) genes were selected and evaluated under normal (± 80 % of the field capacity - FC) and water-deficit (± 50 % FC) conditions. Two potentially tolerant (which demonstrated a higher capacity to maintain physiological performance and metabolic stability under water deficit) and two susceptible genotypes were identified for further in-depth evaluation. Proline and malondialdehyde (MDA) were negatively and significantly correlated with grain yield under normal and water-deficit conditions. Both characters showed high broad-sense heritability across the environments, indicating strong genetic control and stable phenotypic expression. The simultaneous increase of proline and MDA is associated with reduced grain yield, indicating a stress-induced metabolic trade-off in which carbon and energy are redirected from reproductive development toward cellular protection mechanisms in the soybean genotypes.
KEYWORDS: Glycine max L., drought tolerance, osmotic adjustment, oxidative stress.
Downloads
Downloads
Published
Issue
Section
License
Authors will not be paid for published articles and must waive their copyright in favor of the PAT journal. On the other hand, they are solely responsible for the content of those articles, even if the Editor holds the right to adjust them to the norms of the journal. Authors are allowed to publish their articles simultaneously in their institutional repositories, as soon as the original publication at the PAT journal is mentioned.