Functions of ADP-ribose transferases in the maintenance of telomere integrity.

IF 1.6 3区 工程技术 Q4 ENGINEERING, INDUSTRIAL Systems Engineering Pub Date : 2022-03-29 DOI:10.1007/s00018-022-04235-z
Daniela Muoio, Natalie Laspata, Elise Fouquerel
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Abstract

The ADP-ribose transferase (ART) family comprises 17 enzymes that catalyze mono- or poly-ADP-ribosylation, a post-translational modification of proteins. Present in all subcellular compartments, ARTs are implicated in a growing number of biological processes including DNA repair, replication, transcription regulation, intra- and extra-cellular signaling, viral infection and cell death. Five members of the family, PARP1, PARP2, PARP3, tankyrase 1 and tankyrase 2 are mainly described for their crucial functions in the maintenance of genome stability. It is well established that the most describedrole of PARP1, 2 and 3 is the repair of DNA lesions while tankyrases 1 and 2 are crucial for maintaining the integrity of telomeres. Telomeres, nucleoprotein complexes located at the ends of eukaryotic chromosomes, utilize their unique structure and associated set of proteins to orchestrate the mechanisms necessary for their own protection and replication. While the functions of tankyrases 1 and 2 at telomeres are well known, several studies have also brought PARP1, 2 and 3 to the forefront of telomere protection. The singular quality of the telomeric environment has highlighted protein interactions and molecular pathways distinct from those described throughout the genome. The aim of this review is to provide an overview of the current knowledge on the multiple roles of PARP1, PARP2, PARP3, tankyrase 1 and tankyrase 2 in the maintenance and preservation of telomere integrity.

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ADP-ribose 转移酶在维护端粒完整性中的功能。
ADP 核糖转移酶(ART)家族由 17 种催化单或多 ADP 核糖基化(蛋白质的一种翻译后修饰)的酶组成。ART 存在于所有亚细胞区,与越来越多的生物过程有关,包括 DNA 修复、复制、转录调控、细胞内外信号传导、病毒感染和细胞死亡。PARP家族的五个成员,即PARP1、PARP2、PARP3、tankyrase 1和tankyrase 2,主要在维护基因组稳定性方面发挥关键作用。已经证实,PARP1、PARP2 和 PARP3 最主要的作用是修复 DNA 病变,而 tankyrase 1 和 2 则是维护端粒完整性的关键。端粒是位于真核生物染色体末端的核蛋白复合物,利用其独特的结构和相关的一系列蛋白质来协调自身保护和复制所需的机制。尽管端粒上的tankyrases 1和2的功能已广为人知,但一些研究也将PARP1、2和3推到了端粒保护的前沿。端粒环境的特殊性凸显了与整个基因组不同的蛋白质相互作用和分子途径。本综述旨在概述目前关于 PARP1、PARP2、PARP3、tankyrase 1 和 tankyrase 2 在维持和保护端粒完整性方面的多重作用的知识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Systems Engineering
Systems Engineering 工程技术-工程:工业
CiteScore
5.10
自引率
20.00%
发文量
0
审稿时长
6 months
期刊介绍: Systems Engineering is a discipline whose responsibility it is to create and operate technologically enabled systems that satisfy stakeholder needs throughout their life cycle. Systems engineers reduce ambiguity by clearly defining stakeholder needs and customer requirements, they focus creativity by developing a system’s architecture and design and they manage the system’s complexity over time. Considerations taken into account by systems engineers include, among others, quality, cost and schedule, risk and opportunity under uncertainty, manufacturing and realization, performance and safety during operations, training and support, as well as disposal and recycling at the end of life. The journal welcomes original submissions in the field of Systems Engineering as defined above, but also encourages contributions that take an even broader perspective including the design and operation of systems-of-systems, the application of Systems Engineering to enterprises and complex socio-technical systems, the identification, selection and development of systems engineers as well as the evolution of systems and systems-of-systems over their entire lifecycle. Systems Engineering integrates all the disciplines and specialty groups into a coordinated team effort forming a structured development process that proceeds from concept to realization to operation. Increasingly important topics in Systems Engineering include the role of executable languages and models of systems, the concurrent use of physical and virtual prototyping, as well as the deployment of agile processes. Systems Engineering considers both the business and the technical needs of all stakeholders with the goal of providing a quality product that meets the user needs. Systems Engineering may be applied not only to products and services in the private sector but also to public infrastructures and socio-technical systems whose precise boundaries are often challenging to define.
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