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May 20, 2026Functional Plant Biology2 citations

ABA-centric signaling networks for drought resilience in cereals: from transcriptional reprogramming to epigenetic memory

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MAMuhammad Talha AslamSGSaira GhafoorMHMuhammad Zia Ul Haq

Key Points

  • The aim is to explore ABA-centric regulatory networks in cereals that contribute to drought resilience.
  • Summarized key advances in ABA biosynthesis, transport, and catabolism in drought responses.
  • Highlighted role of epigenetic modifiers in establishing stress memory.
  • Discussed use of CRISPR technologies and multi-omics approaches for crop resilience.
  • Identified NCED3, ABC/NPF transporters, and CYP707A as critical for ABA regulation under drought stress.
  • Established that epigenetic modifiers facilitate rapid gene reactivation for drought responses.
  • Demonstrated that CRISPR-edited WRKY18 and OsNAC6 overexpression improve resilience without yield loss.

Abstract

Drought stress poses a significant threat to global agricultural productivity, necessitating comprehensive understanding of plant adaptive strategies. Abscisic acid (ABA) improves plant physio-biochemical response against drought stress by maintaining stomatal regulation, osmo-protectant accumulation, and transcriptional reprogramming. Therefore, complete understanding of the ABA-based regulatory network is pivotal for engineering drought-resilient crops to combat climate change. This review summarizes ABA-centric networks in cereals, highlighting three key advances such as: (1) tissue-specific coordination of NCED3-mediated ABA biosynthesis, ABC/NPF transporter-dependent distribution, and CYP707A-driven catabolism fine-tunes drought responses; (2) epigenetic modifiers (ATX1-H3K4me3, miR169a-NF-YA5) establish stress memory, enabling accelerated reactivation of LEA-RD29 genes during recurrent drought; and (3) CRISPR-edited WRKY18 and root-specific OsNAC6 overexpression enhance resilience without yield reduction. This revise also discusses the ABA–jasmonate crosstalk as an unresolved frontier and futuristic approach that should prioritize multi-omics technologies such as CRISPR-Cas13 for specific RNA editing and field validation of epi-primed crops. Integrating these molecular insights will help advance climate-resilient agriculture and secure food production in drought-stressed areas of the world.

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Cite This Study

Aslam et al. (2025) studied this question.

synapsesocial.com/papers/6a0d5114f03e14405aa9d5b2https://doi.org/10.1071/fp25173
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