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综述:DNA 和 RNA 中的植物 G-四链体 (G4) 基序;大量存在且令人感兴趣的未知功能序列。

Review: Plant G-quadruplex (G4) motifs in DNA and RNA; abundant, intriguing sequences of unknown function.

机构信息

Department of Biological Science, 319 Stadium Drive, Florida State University, Tallahassee, FL, 32306-4295, USA.

出版信息

Plant Sci. 2018 Apr;269:143-147. doi: 10.1016/j.plantsci.2018.01.011. Epub 2018 Feb 2.

Abstract

DNA sequences capable of forming G-quadruplex (G4) structures can be predicted and mapped in plant genomes using computerized pattern search programs. Non-telomeric G4 motifs have recently been found to number in the thousands across many plant species and enriched around gene promoters, prompting speculation that they may represent a newly uncovered and ubiquitous family of cis-acting elements. Comparative analysis shows that monocots exhibit five to ten times higher G4 motif density than eudicots, but the significance of this difference has not been determined. The vast scale and complexity of G4 functions, actual or theoretical, are reviewed in relation to the multiple modes of action and myriad genetic functions for which G4s have been implicated in DNA and RNA. Future experimental strategies and opportunities include identifying plant G4-interactomes, resolving the structures of G4s with and without their binding partners, and defining molecular mechanisms through reporter gene, genetic, or genome editing approaches. Given the global importance of plants for food, clothing, medicine, and energy, together with the potential role of G4 motifs as a widely conserved set of DNA sequences that could coordinate gene regulation, future plant G4 research holds great potential for use in plant improvement strategies.

摘要

能够形成 G-四链体 (G4) 结构的 DNA 序列可以使用计算机模式搜索程序在植物基因组中进行预测和映射。最近发现,非端粒 G4 基序在许多植物物种中数量达到数千个,并富集在基因启动子周围,这促使人们猜测它们可能代表一种新发现的普遍存在的顺式作用元件家族。比较分析表明,单子叶植物的 G4 基序密度比双子叶植物高五到十倍,但这种差异的意义尚未确定。本文综述了 G4 功能的巨大规模和复杂性,包括实际或理论上的多种作用模式以及 G4 与 DNA 和 RNA 的多种遗传功能之间的关系。未来的实验策略和机会包括鉴定植物 G4 相互作用组,解析有和没有其结合伴侣的 G4 结构,并通过报告基因、遗传或基因组编辑方法定义分子机制。鉴于植物在食品、服装、医药和能源方面的全球重要性,以及 G4 基序作为一组广泛保守的 DNA 序列来协调基因调控的潜在作用,未来的植物 G4 研究在植物改良策略中具有很大的应用潜力。

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