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端粒酶RNA的进化:从植物端粒到更广泛的真核生物多样性的历程

Telomerase RNA evolution: a journey from plant telomeres to broader eukaryotic diversity.

作者信息

Fajkus Petr, Fajkus Jiří

机构信息

Institute of Biophysics of the Czech Academy of Sciences, 612 65 Brno, Czech Republic.

Laboratory of Functional Genomics and Proteomics, National Centre for Biomolecular Research, Faculty of Science, Masaryk University, 625 00 Brno, Czech Republic.

出版信息

Biochem J. 2025 Jan 31;482(3):BCJ20240501. doi: 10.1042/BCJ20240501.

Abstract

Telomeres, essential for maintaining genomic stability, are typically preserved through the action of telomerase, a ribonucleoprotein complex that synthesizes telomeric DNA. One of its two core components, telomerase RNA (TR), serves as the template for this synthesis, and its evolution across different species is both complex and diverse. This review discusses recent advancements in understanding TR evolution, with a focus on plants (Viridiplantae). Utilizing novel bioinformatic tools and accumulating genomic and transcriptomic data, combined with corresponding experimental validation, researchers have begun to unravel the intricate pathways of TR evolution and telomere maintenance mechanisms. Contrary to previous beliefs, a monophyletic origin of TR has been demonstrated first in land plants and subsequently across the broader phylogenetic megagroup Diaphoretickes. Conversely, the discovery of plant-type TRs in insects challenges assumptions about the monophyletic origin of TRs in animals, suggesting evolutionary innovations coinciding with arthropod divergence. The review also highlights key challenges in TR identification and provides examples of how these have been addressed. Overall, this work underscores the importance of expanding beyond model organisms to comprehend the full complexity of telomerase evolution, with potential applications in agriculture and biotechnology.

摘要

端粒对于维持基因组稳定性至关重要,通常通过端粒酶的作用得以保存,端粒酶是一种合成端粒DNA的核糖核蛋白复合体。其两个核心组分之一,端粒酶RNA(TR),作为这种合成的模板,并且它在不同物种间的进化既复杂又多样。本综述讨论了在理解TR进化方面的最新进展,重点是植物(绿藻门)。利用新颖的生物信息学工具以及积累的基因组和转录组数据,并结合相应的实验验证,研究人员已开始揭示TR进化的复杂途径和端粒维持机制。与先前的观点相反,TR的单系起源首先在陆地植物中得到证实,随后在更广泛的系统发育大类双鞭毛虫类中也得到证实。相反,在昆虫中发现植物型TR挑战了关于动物中TR单系起源的假设,表明进化创新与节肢动物的分化同时发生。该综述还强调了TR鉴定中的关键挑战,并提供了应对这些挑战的示例。总体而言,这项工作强调了超越模式生物进行研究以全面理解端粒酶进化复杂性的重要性,这在农业和生物技术中具有潜在应用价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e6e/12133305/602fdfb424d0/bcj-482-3-BCJ20240501-g001.jpg

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