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January 24, 2026Plant Cell & Environment3 citations

Genome‐Wide Association Study Pinpoints Novel Genes Regulating Seedling Root Growth Variation of Arabidopsis thaliana Under Drought

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DMDebankona MarikSTSurbhi Vilas TajaneRKRishabh Kumar

Key Points

  • The research aims to identify genetic factors influencing drought tolerance in the root growth of Arabidopsis thaliana.
  • Conducted a genome-wide association study on 207 Arabidopsis thaliana ecotypes under PEG-induced drought stress.
  • Identified 68 protein-coding genes and 50 top SNPs associated with drought tolerance.
  • Performed functional enrichment analyses to pinpoint key biological processes involved in stress response.
  • Utilized T-DNA insertion knockout/knockdown mutants for reverse genetic evaluation.
  • Identified key genetic loci linked to drought tolerance and root growth variation.
  • Knockdown of AT1G06690 led to increased hydrogen peroxide in roots, indicating its role in oxidative stress mitigation.
  • Highlighted several genetic candidates and their involvement in processes like DNA repair, stress granule assembly, and protein folding.

Abstract

ABSTRACT Developing drought‐resilient crops requires a precise understanding of molecular signalling in the root, the primary organ encountering drought. This study unravelled novel genetic loci regulating drought tolerance by exploiting the natural variation in seedling root growth of Arabidopsis thaliana under PEG‐induced drought stress. Through a genome‐wide association study of 207 worldwide A. thaliana ecotypes from regions with varied rainfall, 68 protein‐coding genes were identified with the top 50 SNPs. Functional enrichment and network analyses demarcated key processes involved in stress tolerance, including DNA repair, tRNA editing, protein folding, cell cycle regulation, stress granule assembly and the pyridoxal 5′‐phosphate (PLP) salvage pathway. Expression level polymorphisms, promoter cis ‐element variations and amino acid substitutions associated with phenotype and climate were identified. Reverse genetic evaluation using T‐DNA insertion knockout/knockdown mutants confirmed the involvement of candidate genes: AT1G06690 (PLP pathway), AT4G26990, RBP45C (stress granules), ACD55.5 (protein folding), PCMP‐A4 (AT1G14470; RNA editing), SKS6 , ANAC094 (cell wall remodelling) and INCENP (cell cycle), with seedling drought tolerance. Specifically, knockdown of AT1G06690 resulted in higher root hydrogen peroxide accumulation, highlighting the importance of the PLP pathway in mitigating oxidative stress. These molecular insights offer new biotechnological and breeding tools to enhance crop drought tolerance by modulating root traits.

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Cite This Study

Marik et al. (2026) studied this question.

synapsesocial.com/papers/697460e9bb9d90c67120abf3https://doi.org/10.1111/pce.70399
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