Past trauma, better future: how stress memory shapes plant adaptation to drought.

IF 2.6 4区 生物学 Q2 PLANT SCIENCES
Md Mezanur Rahman, Sanjida Sultana Keya, Mallesham Bulle, S M Ahsan, Md Abiar Rahman, Md Shyduzzaman Roni, Md Mahmud Al Noor, Mehedi Hasan
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引用次数: 0

Abstract

Can plants remember drought? Emerging evidence suggests that prior stress exposure leaves an epigenetic imprint, reprogramming plants for enhanced resilience. However, the stability and functional relevance of drought memory remain unresolved. This review synthesizes recent advances in epigenetic modifications, transcriptional reprogramming, and metabolic priming, critically assessing their roles in plant stress adaptation. DNA methylation dynamically reshapes chromatin landscapes, yet its transient nature questions its long-term inheritance. Histone modifications, particularly H3K9ac and H2Bub1, may encode stress signatures, enabling rapid transcriptional responses, whereas small RNAs fine-tune chromatin states to reinforce memory. Beyond epigenetics, physiological priming, including osmotic adjustments, antioxidant defenses, and hormonal crosstalk, introduces further complexity, yet its evolutionary advantage remains unclear. Root system plasticity may enhance drought resilience, but its metabolic trade-offs and epigenetic underpinnings are largely unexplored. A critical challenge is disentangling stable adaptive mechanisms from transient acclimatory shifts. We propose a framework for evaluating drought memory across temporal and generational scales and highlight the potential of precision genome editing to establish causality. By integrating multi-omics, gene editing, and field-based validation, this review aims to unlock the molecular blueprint of drought memory. Understanding these mechanisms is key to engineering climate-resilient crops, ensuring global food security in an era of increasing environmental uncertainty.

过去的创伤,更好的未来:压力记忆如何塑造植物对干旱的适应。
植物能记住干旱吗?新出现的证据表明,先前的压力暴露会留下表观遗传印记,重新编程植物以增强恢复力。然而,干旱记忆的稳定性和功能相关性仍未得到解决。本文综述了表观遗传修饰、转录重编程和代谢启动的最新进展,并批判性地评估了它们在植物逆境适应中的作用。DNA甲基化动态地重塑染色质景观,但其短暂的性质质疑其长期遗传。组蛋白修饰,特别是H3K9ac和H2Bub1,可能编码应激信号,实现快速转录反应,而小rna微调染色质状态以加强记忆。除了表观遗传学,生理启动,包括渗透调节、抗氧化防御和激素串扰,引入了进一步的复杂性,但其进化优势尚不清楚。根系可塑性可能增强抗旱能力,但其代谢权衡和表观遗传基础在很大程度上尚未被探索。一个关键的挑战是将稳定的适应机制与短暂的适应转变分开。我们提出了一个跨时间和代际尺度评估干旱记忆的框架,并强调了精确基因组编辑在建立因果关系方面的潜力。通过整合多组学、基因编辑和实地验证,本综述旨在揭开干旱记忆的分子蓝图。了解这些机制是设计适应气候变化的作物的关键,在环境不确定性日益增加的时代确保全球粮食安全。
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来源期刊
Functional Plant Biology
Functional Plant Biology 生物-植物科学
CiteScore
5.50
自引率
3.30%
发文量
156
审稿时长
1 months
期刊介绍: Functional Plant Biology (formerly known as Australian Journal of Plant Physiology) publishes papers of a broad interest that advance our knowledge on mechanisms by which plants operate and interact with environment. Of specific interest are mechanisms and signal transduction pathways by which plants adapt to extreme environmental conditions such as high and low temperatures, drought, flooding, salinity, pathogens, and other major abiotic and biotic stress factors. FPB also encourages papers on emerging concepts and new tools in plant biology, and studies on the following functional areas encompassing work from the molecular through whole plant to community scale. FPB does not publish merely phenomenological observations or findings of merely applied significance. Functional Plant Biology is published with the endorsement of the Commonwealth Scientific and Industrial Research Organisation (CSIRO) and the Australian Academy of Science. Functional Plant Biology is published in affiliation with the Federation of European Societies of Plant Biology and in Australia, is associated with the Australian Society of Plant Scientists and the New Zealand Society of Plant Biologists.
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