Moisture-level dependent trait profile of drought response in Gossypium hirsutum
DOI:
https://doi.org/10.66432/g17gf887Keywords:
cotton, Drought, excised leaf water loss, relative water content, peroxidase, hydrogen peroxideAbstract
Drought is one of the major abiotic stresses limiting cotton productivity, particularly in arid and semi-arid regions. The screening at the seedling stage has been extensively utilized to accelerate the process of selection, but the role of growth, water status, and oxidative traits can change with moisture conditions. Understanding this dependence on moisture-level is essential for trait-based phenotyping and drought-resilient breeding. A greenhouse study was conducted using forty upland cotton accessions grown under 100%, 75%, and 50% field capacity in a two-replications factorial completely randomized design. After two weeks of sowing, stress was imposed, and measurements were recorded at 45 days. Analysis of variance, regime-specific trait summaries, principal component analysis, and K-means clustering were used to interpret the dataset. Drought had decreased the shoot length and relative water content and changed the covariance pattern among traits. ANOVA revealed that genotypes, moisture treatment, and the interaction of genotype and treatment had significant effects on all traits. Multivariate analysis revealed a trait architecture shift as moisture decreased. ELWL and RL were observed to play a major role in principal component structure under normal water conditions, whereas POD and H2O2 had a dominant role under moderate and severe drought. Cluster centroids further distinguish between profiles related to higher antioxidant activity. The findings revealed that cotton seedlings are moisture-level specific instead of being determined by a hierarchical set of traits under drought stress. This study can be useful for selecting drought screening traits in cotton.
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