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February 14, 2026Frontiers in Plant Science0 citationsOpen Access

Epigenetic modifications in plant abiotic stress adaptation: towards climate-resilient and sustainable crop improvement

MQMuslim QadirNKNavjot KaurFRFaiz Ur Rahman

Key Points

  • The review aims to explore how epigenetic modifications help plants adapt to abiotic stresses and improve crop resilience.
  • Synthesis of studies using techniques like whole-genome bisulfite sequencing, ChIP-seq, and ATAC-seq.
  • Evaluation of key mutants such as met1, hda6, and brahma regarding stress memory.
  • Discussion of epigenetic regulation roles in crop applications, including CRISPR-dCas9 editing.
  • Enhanced drought adaptation observed with promoter demethylation in rice and wheat.
  • Natural epialleles linked to resilience, showing significant yield protection under stress conditions.
  • The review identifies transformative potential of integrating epigenetic regulation in breeding programs.

Abstract

Abiotic stresses such as drought, salinity, heat, and cold are the most critical factors limiting global crop productivity, posing significant challenges to food security and the sustainability of agricultural systems. Epigenetic modifications, including DNA methylation, histone modifications and non-coding RNAs, enable plants to respond rapidly to environmental stimuli without altering DNA sequences. These mechanisms, demonstrated through studies using whole-genome bisulfite sequencing (WGBS), ChIP-seq, ATAC-seq, and validation in key mutants ( met1 , hda6 , brahma ), mediate chromatin remodelers ( SWI / SNF , DDM1), hormone signaling crosstalk, and emerging spatial epigenomics (scATAC-seq in roots and guard cells). This review synthesizes the hierarchy of somatic stress memory, characterized by sustained H3K4me3 enrichment at promoters that facilitates rapid re-induction and transgenerational inheritance mediated by RdDM across the F 1 -F 3 generations. By distinguishing correlative profiling from causal evidence, this review bridges significant experimental gaps, highlights the intricate, dynamic interplay between epigenetic layers that underpins stress memory and its heritable effects. Crop applications reveal the role of natural epialleles in promoting resilience: hypomethylation of OsHMA3 promoter confers cadmium tolerance in rice grains (50% reduction), while DRO1 demethylation enhances drought adaptation over deeper rooting (15-22% yield protection). CRISPR-dCas9 epigenome editing enables targeted modifications, with OsDREB1 targeting in rice boosting drought tolerance by 25% and TaNHX 1 modification in wheat developing salinity resilience. These advances position epigenetic regulation as a transformative tool for climate-resilient crop breeding. Integrating multi-omics with functional genomics addresses polyploid challenges, enabling non-transgenic epiallele breeding for global food security.

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Cite This Study

Qadir et al. (2026) studied this question.

synapsesocial.com/papers/699010382ccff479cfe56cc1https://doi.org/10.3389/fpls.2026.1738299
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