Redox-engineering enhances maize thermotolerance and grain yield in the field.
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ABSTRACT: Increasing populations and temperatures are expected to escalate food demands beyond production capacities, and the development of maize lines with better performance under heat stress is desirable. Here, we report that constitutive ectopic expression of a heterologous glutaredoxin S17 from Arabidopsis thaliana (AtGRXS17) can provide thermotolerance in maize through enhanced chaperone activity and modulation of heat stress-associated gene expression. The thermotolerant maize lines had increased protection against protein damage and yielded a sixfold increase in grain production in comparison to the non-transgenic counterparts under heat stress field conditions. The maize lines also displayed thermotolerance in the reproductive stages, resulting in improved pollen germination and the higher
SUBMITTER: Sprague SA
PROVIDER: S-EPMC9398381 | biostudies-literature | 2022 Sep
REPOSITORIES: biostudies-literature
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