Aug 2026· Plant Science· pp.
113351
· 0 citations· 78 references
Medicine
TL;DR
This review summarises recent advances in the epigenetic functions of lncRNAs in plant drought adaptation, with particular emphasis on chromatin dynamics, stress memory, and lncRNA-mediated regulatory networks.
Abstract
Drought stress is one of the most severe abiotic constraints limiting plant growth, productivity, and global food security, with its impact intensifying under climate change. Plants adapt to drought through complex physiological, transcriptional, and epigenetic regulatory networks. Among these, long non-coding RNAs (lncRNAs) have emerged as critical regulators that integrate transcriptional control with chromatin-level modulation. Once considered transcriptional noise, lncRNAs are now recognised as dynamic molecular regulators that fine-tune drought-responsive gene expression through chromatin remodelling, histone modifications, DNA methylation, RNA-directed DNA methylation (RdDM), and lncRNA-microRNA crosstalk. These mechanisms regulate key adaptive pathways, including abscisic acid (ABA) signalling, reactive oxygen species (ROS) homeostasis, osmotic adjustment, and root system plasticity. Emerging evidence further highlights the role of lncRNAs in epigenetic stress memory, enabling plants to maintain a primed transcriptional state and respond more efficiently to recurrent drought episodes. This review summarises recent advances in the epigenetic functions of lncRNAs in plant drought adaptation, with particular emphasis on chromatin dynamics, stress memory, and lncRNA-mediated regulatory networks. We also discuss insights from integrated omics approaches and highlight the translational potential of drought-responsive lncRNAs for developing climate-resilient crops.
A conceptual framework integrating epigenetic, hormonal, and miRNA-mediated regulation of drought responses is proposed, and the impact of advanced technologies, such as bisulfite sequencing and CRISPR-Cas9, in dissecting plant epigenetic responses to drought are emphasized.
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This study examined the complex roles of epigenetic mechanisms—DNA methylation, histone modification, chromatin remodeling, and non-coding RNAs—in enhancing stress tolerance and regulating fruit quality traits.
T. Tejas, Akshay Mehta, S. Baloda et al.· Applied Fruit Science· 0 citations
Current knowledge on AS and lncRNAs is summarized and their integrated roles in improving abiotic stress tolerance in plants are highlighted, enabling regulatory flexibility and stress resilience.
This review examines the bidirectional interactions between epigenetic mechanisms and ROS homeostasis in plant stress adaptation, with a particular emphasis on drought resistance, and proposes that these interactions take the form of dynamic regulatory networks rather than one-way pathways.
N. Bhanbhro, Q. Bakhsh, Shengdixin Shi et al.· Theoretical and Applied Gene...· 1 citation
Salinity and drought stresses induced by climate change pose critical threats to global food security, necessitating a comprehensive insight of plant adaptive mechanisms at the genomic level. This review brings together recent advances in identifying genes, regulatory networks, and evolutionary strategies underlying pl...
Md. Arif Sakil, S. Shorna, Maisha Rahman et al.· OBM Genetics· 0 citations
This work proposes that phytomelatonin functions as an epigenetic and epitranscriptomic trigger capable of converting transient stress perception into durable transcriptional competence and outlines how single-cell multi-omics, targeted epigenome editing, epitranscriptomic profiling and field-scale validation of primin...
Chen-Hui Li, Wen-Fang Guo, Xiaofeng Su et al.· Plant physiology and biochem...· 0 citations
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