Saeed Faisal, Chaudhry Usman Khalid, Bakhsh Allah, Raza Ali, Saeed Yasir, Bohra Abhishek, Varshney Rajeev K
Department of Agricultural Genetic Engineering, Faculty of Agricultural Sciences and Technologies, Nigde Omer Halisdemir University, Nigde, Turkey.
Centre of Excellence in Molecular Biology, University of the Punjab, Lahore, Pakistan.
Front Genet. 2022 Apr 19;13:874648. doi: 10.3389/fgene.2022.874648. eCollection 2022.
Plants offer a habitat for a range of interactions to occur among different stress factors. Epigenetics has become the most promising functional genomics tool, with huge potential for improving plant adaptation to biotic and abiotic stresses. Advances in plant molecular biology have dramatically changed our understanding of the molecular mechanisms that control these interactions, and plant epigenetics has attracted great interest in this context. Accumulating literature substantiates the crucial role of epigenetics in the diversity of plant responses that can be harnessed to accelerate the progress of crop improvement. However, harnessing epigenetics to its full potential will require a thorough understanding of the epigenetic modifications and assessing the functional relevance of these variants. The modern technologies of profiling and engineering plants at genome-wide scale provide new horizons to elucidate how epigenetic modifications occur in plants in response to stress conditions. This review summarizes recent progress on understanding the epigenetic regulation of plant stress responses, methods to detect genome-wide epigenetic modifications, and disentangling their contributions to plant phenotypes from other sources of variations. Key epigenetic mechanisms underlying stress memory are highlighted. Linking plant response with the patterns of epigenetic variations would help devise breeding strategies for improving crop performance under stressed scenarios.
植物为一系列不同胁迫因素之间的相互作用提供了一个栖息地。表观遗传学已成为最具前景的功能基因组学工具,在提高植物对生物和非生物胁迫的适应性方面具有巨大潜力。植物分子生物学的进展极大地改变了我们对控制这些相互作用的分子机制的理解,在此背景下,植物表观遗传学引起了极大的兴趣。越来越多的文献证实了表观遗传学在植物反应多样性中的关键作用,可利用这一点来加速作物改良进程。然而,要充分发挥表观遗传学的潜力,需要深入了解表观遗传修饰并评估这些变异的功能相关性。全基因组规模的植物分析和工程改造的现代技术为阐明植物在胁迫条件下如何发生表观遗传修饰提供了新的视野。本综述总结了在理解植物应激反应的表观遗传调控、检测全基因组表观遗传修饰的方法以及从其他变异来源中区分它们对植物表型的贡献方面的最新进展。强调了应激记忆背后的关键表观遗传机制。将植物反应与表观遗传变异模式联系起来将有助于制定育种策略,以提高胁迫条件下作物的性能。