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February 5, 2026Plant Biotechnology Journal0 citationsOpen Access

Stress Granule‐Associated ZmCTU2 Confers Thermotolerance in Maize via Coordinated Regulation of Proteostasis and ROS Homeostasis

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YXYufang XuYFYudong FanYLYulian Li

Key Points

  • The aim is to analyze the function of ZmCTU2 in conferring heat tolerance in maize plants.
  • Correlational analysis of ZmCTU2 expression with kernel-setting under heat stress
  • Overexpression studies of ZmCTU2 at seedling and adult stages
  • Assessment of survival and yield under heat stress in maize
  • Functional analysis of loss-of-function mutations in ZmCTU2 and ZmCTU1
  • Mechanistic investigation of ZmCTU2's role in stress granules
  • Overexpression of ZmCTU2 significantly enhances thermotolerance in maize under heat stress
  • Loss-of-function mutants of ZmCTU2 and ZmCTU1 exhibit severe developmental defects
  • ZmCTU2 translocates to stress granules and recruits protective proteins, enhancing survival
  • Coordinated regulation of tRNA thiolation and antioxidative enzyme stabilization occurs under thermal stress

Abstract

ABSTRACT The escalating global temperatures and intensifying heat stress events pose significant threats to maize productivity worldwide. Uncovering key thermotolerance genes and their functional mechanisms is thus critical for developing climate‐resilient crops. Here, we report that ZmCTU2, a cytoplasmic tRNA thiolation factor, acts as a central regulator of heat tolerance in maize. Expression of ZmCTU2 correlates positively with kernel‐setting under high temperatures. Overexpression of ZmCTU2 confers enhanced thermotolerance at both seedling and adult stages, improving survival and field yield under heat stress, whereas loss‐of‐function mutants of ZmCTU2 or its partner ZmCTU1 display severe seed developmental defects and lethality. Mechanistically, ZmCTU2 translocates to stress granules under thermal stress, where it recruits ZmCTU1 and ROS‐scavenging peroxidases, shielding them from degradation. This dual recruitment facilitates synergistic protective responses: maintenance of tRNA thiolation to ensure translational fidelity, and stabilisation of antioxidative enzymes to bolster redox homeostasis. Our study identifies ZmCTU2 as a scaffold protein within stress granules that coordinates proteostatic and antioxidative pathways under heat stress, providing a valuable genetic resource for engineering thermotolerant maize.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6984358ff1d9ada3c1fb47a5https://doi.org/10.1111/pbi.70568
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