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木本植物嫁接后表观遗传变化与转录重编程对变化环境下作物可持续性的影响

Epigenetic Changes and Transcriptional Reprogramming Upon Woody Plant Grafting for Crop Sustainability in a Changing Environment.

作者信息

Kapazoglou Aliki, Tani Eleni, Avramidou Evangelia V, Abraham Eleni M, Gerakari Maria, Megariti Stamatia, Doupis Georgios, Doulis Andreas G

机构信息

Department of Vitis, Institute of Olive Tree, Subtropical Crops and Viticulture (IOSV), Hellenic Agricultural Organization-Demeter (HAO-Demeter), Athens, Greece.

Laboratory of Plant Breeding and Biometry, Department of Crop Science, Agricultural University of Athens, Athens, Greece.

出版信息

Front Plant Sci. 2021 Jan 12;11:613004. doi: 10.3389/fpls.2020.613004. eCollection 2020.

Abstract

Plant grafting is an ancient agricultural practice widely employed in crops such as woody fruit trees, grapes, and vegetables, in order to improve plant performance. Successful grafting requires the interaction of compatible scion and rootstock genotypes. This involves an intricate network of molecular mechanisms operating at the graft junction and associated with the development and the physiology of the scion, ultimately leading to improved agricultural characteristics such as fruit quality and increased tolerance/resistance to abiotic and biotic factors. Bidirectional transfer of molecular signals such as hormones, nutrients, proteins, and nucleic acids from the rootstock to the scion and vice versa have been well documented. In recent years, studies on rootstock-scion interactions have proposed the existence of an epigenetic component in grafting reactions. Epigenetic changes such as DNA methylation, histone modification, and the action of small RNA molecules are known to modulate chromatin architecture, leading to gene expression changes and impacting cellular function. Mobile small RNAs (siRNAs) migrating across the graft union from the rootstock to the scion and vice versa mediate modifications in the DNA methylation pattern of the recipient partner, leading to altered chromatin structure and transcriptional reprogramming. Moreover, graft-induced DNA methylation changes and gene expression shifts in the scion have been associated with variations in graft performance. If these changes are heritable they can lead to stably altered phenotypes and affect important agricultural traits, making grafting an alternative to breeding for the production of superior plants with improved traits. However, most reviews on the molecular mechanisms underlying this process comprise studies related to vegetable grafting. In this review we will provide a comprehensive presentation of the current knowledge on the epigenetic changes and transcriptional reprogramming associated with the rootstock-scion interaction focusing on woody plant species, including the recent findings arising from the employment of advanced-omics technologies as well as transgrafting methodologies and their potential exploitation for generating superior quality grafts in woody species. Furthermore, will discuss graft-induced heritable epigenetic changes leading to novel plant phenotypes and their implication to woody crop improvement for yield, quality, and stress resilience, within the context of climate change.

摘要

植物嫁接是一种古老的农业实践,广泛应用于木本果树、葡萄和蔬菜等作物,以提高植物性能。成功的嫁接需要兼容的接穗和砧木基因型相互作用。这涉及到在嫁接部位运作的复杂分子机制网络,并与接穗的发育和生理相关,最终导致改善农业特性,如果实品质以及提高对非生物和生物因素的耐受性/抗性。分子信号如激素、营养物质、蛋白质和核酸从砧木到接穗以及反之从接穗到砧木的双向转移已得到充分证明。近年来,关于砧木 - 接穗相互作用的研究提出在嫁接反应中存在表观遗传成分。已知表观遗传变化如DNA甲基化、组蛋白修饰和小RNA分子的作用会调节染色质结构,导致基因表达变化并影响细胞功能。移动小RNA(siRNA)从砧木穿过嫁接部位迁移到接穗以及反之从接穗迁移到砧木,介导受体伙伴DNA甲基化模式的改变,导致染色质结构改变和转录重编程。此外,嫁接诱导的接穗中DNA甲基化变化和基因表达变化与嫁接性能的差异有关。如果这些变化是可遗传的,它们会导致表型稳定改变并影响重要的农业性状,使嫁接成为培育具有改良性状的优质植物的育种替代方法。然而,关于这一过程潜在分子机制的大多数综述都包含与蔬菜嫁接相关的研究。在本综述中,我们将全面介绍目前关于与砧木 - 接穗相互作用相关的表观遗传变化和转录重编程的知识,重点关注木本植物物种,包括采用先进组学技术以及异砧嫁接方法所产生的最新发现,以及它们在培育优质木本嫁接植物方面的潜在应用。此外,我们将讨论嫁接诱导的可遗传表观遗传变化如何导致新的植物表型及其在气候变化背景下对木本作物产量、品质和抗逆性改良的意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/537e/7835530/eca8b70d15a6/fpls-11-613004-g001.jpg

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