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水稻表观遗传学的研究进展。

The gymnastics of epigenomics in rice.

机构信息

Department of Biotechnology, St. Xavier's College (Autonomous), 30, Mother Teresa Sarani, Kolkata, 700016, West Bengal, India.

出版信息

Plant Cell Rep. 2018 Jan;37(1):25-49. doi: 10.1007/s00299-017-2192-2. Epub 2017 Sep 2.

DOI:10.1007/s00299-017-2192-2
PMID:28866772
Abstract

Epigenomics is represented by the high-throughput investigations of genome-wide epigenetic alterations, which ultimately dictate genomic, transcriptomic, proteomic and metabolomic dynamism. Rice has been accepted as the global staple crop. As a result, this model crop deserves significant importance in the rapidly emerging field of plant epigenomics. A large number of recently available data reveal the immense flexibility and potential of variable epigenomic landscapes. Such epigenomic impacts and variability are determined by a number of epigenetic regulators and several crucial inheritable epialleles, respectively. This article highlights the correlation of the epigenomic landscape with growth, flowering, reproduction, non-coding RNA-mediated post-transcriptional regulation, transposon mobility and even heterosis in rice. We have also discussed the drastic epigenetic alterations which are reported in rice plants grown from seeds exposed to the extraterrestrial environment. Such abiotic conditions impose stress on the plants leading to epigenomic modifications in a genotype-specific manner. Some significant bioinformatic databases and in silico approaches have also been explained in this article. These softwares provide important interfaces for comparative epigenomics. The discussion concludes with a unified goal of developing epigenome editing to promote biological hacking of the rice epigenome. Such a cutting-edge technology if properly standardized, can integrate genomics and epigenomics together with the generation of high-yielding trait in several cultivars of rice.

摘要

表观基因组学以高通量研究全基因组表观遗传改变为代表,这些改变最终决定了基因组、转录组、蛋白质组和代谢组的动态变化。水稻被认为是全球主要的粮食作物。因此,作为一种模式作物,它在迅速发展的植物表观基因组学领域具有重要意义。大量最近可用的数据揭示了可变表观基因组景观的巨大灵活性和潜力。这些表观遗传影响和可变性分别由许多表观遗传调节剂和几个关键的可遗传表观等位基因决定。本文重点介绍了水稻中表观基因组景观与生长、开花、繁殖、非编码 RNA 介导的转录后调控、转座子活性甚至杂种优势的相关性。我们还讨论了在暴露于外星环境的种子中生长的水稻植株中报道的剧烈表观遗传改变。这些非生物条件对植物造成压力,导致以基因型特异性的方式进行表观遗传修饰。本文还解释了一些重要的生物信息学数据库和计算机模拟方法。这些软件为比较表观基因组学提供了重要的接口。讨论的结论是开发表观基因组编辑,以促进对水稻表观基因组的生物黑客攻击。如果这种前沿技术得到适当的标准化,可以将基因组学和表观基因组学与几个水稻品种高产性状的产生结合起来。

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SET DOMAIN GROUP701 encodes a H3K4-methytransferase and regulates multiple key processes of rice plant development.SET 结构域家族 701 编码一个 H3K4 甲基转移酶,调控水稻多个关键发育过程。
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