Dynamics and Malleability of Plant DNA Methylation During Abiotic Stresses.

IF 3.5 Q3 GENETICS & HEREDITY
Niraj Lodhi, Rakesh Srivastava
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引用次数: 0

Abstract

Epigenetic regulation, particularly DNA methylation, plays a crucial role in plant adaptation to environmental stresses by modulating gene expression without altering the underlying DNA sequence. In response to major abiotic stresses such as salinity, drought, heat, cold, and heavy metal toxicity, plants undergo dynamic changes in DNA methylation patterns. These modifications are orchestrated by DNA methyltransferases and demethylases with variations depending on plant species, genetic background, and ontogenic phase. DNA methylation affects the expression of key genes involved in cellular, physiological, and metabolic processes essential for stress tolerance. Furthermore, it contributes to the establishment of stress memory, which can be transmitted across generations, thereby enhancing long-term plant resilience. The interaction of DNA methylation with other epigenetic mechanisms, including histone modifications, small RNAs, and chromatin remodeling, adds layers of regulatory complexity. Recent discoveries concerning N6-methyladenine have opened new avenues for understanding the epigenetic landscape in plant responses to abiotic stress. Overall, this review addresses the central role of DNA methylation in regulating plant stress responses and emphasizes its potential for application in crop improvement through epigenetic and advanced biotechnological approaches.

Abstract Image

Abstract Image

非生物胁迫下植物DNA甲基化的动态和延展性。
表观遗传调控,特别是DNA甲基化,在植物适应环境胁迫中起着至关重要的作用,通过调节基因表达而不改变潜在的DNA序列。在盐度、干旱、高温、低温和重金属中毒等主要非生物胁迫下,植物DNA甲基化模式发生动态变化。这些修饰是由DNA甲基转移酶和去甲基化酶精心安排的,它们的变化取决于植物物种、遗传背景和个体形成阶段。DNA甲基化影响胁迫耐受所必需的细胞、生理和代谢过程中关键基因的表达。此外,它有助于逆境记忆的建立,这种记忆可以跨代传递,从而提高植物的长期恢复力。DNA甲基化与其他表观遗传机制的相互作用,包括组蛋白修饰、小rna和染色质重塑,增加了调控的复杂性。关于n6 -甲基腺嘌呤的最新发现为了解植物对非生物胁迫反应的表观遗传格局开辟了新的途径。综上所述,本文综述了DNA甲基化在调控植物胁迫反应中的核心作用,并强调了其通过表观遗传和先进生物技术方法在作物改良中的应用潜力。
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来源期刊
Epigenomes
Epigenomes GENETICS & HEREDITY-
CiteScore
3.80
自引率
0.00%
发文量
38
审稿时长
11 weeks
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