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The Role of Torsin AAA+ Proteins in Preserving Nuclear Envelope Integrity and Safeguarding Against Disease

机译:都灵AAA +蛋白在保持核包膜完整性和预防疾病中的作用

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摘要

Torsin ATPases are members of the AAA+ (ATPases associated with various cellular activities) superfamily of proteins, which participate in essential cellular processes. While AAA+ proteins are ubiquitously expressed and demonstrate distinct subcellular localizations, Torsins are the only AAA+ to reside within the nuclear envelope (NE) and endoplasmic reticulum (ER) network. Moreover, due to the absence of integral catalytic features, Torsins require the NE- and ER-specific regulatory cofactors, lamina-associated polypeptide 1 (LAP1) and luminal domain like LAP1 (LULL1), to efficiently trigger their atypical mode of ATP hydrolysis. Despite their implication in an ever-growing list of diverse processes, the specific contributions of Torsin/cofactor assemblies in maintaining normal cellular physiology remain largely enigmatic. Resolving gaps in the functional and mechanistic principles of Torsins and their cofactors are of considerable medical importance, as aberrant Torsin behavior is the principal cause of the movement disorder DYT1 early-onset dystonia. In this review, we examine recent findings regarding the phenotypic consequences of compromised Torsin and cofactor activities. In particular, we focus on the molecular features underlying NE defects and the contributions of Torsins to nuclear pore complex biogenesis, as well as the growing implications of Torsins in cellular lipid metabolism. Additionally, we discuss how understanding Torsins may facilitate the study of essential but poorly understood processes at the NE and ER, and aid in the development of therapeutic strategies for dystonia.
机译:躯干ATP酶是蛋白质AAA +(与各种细胞活动相关的ATP酶)超家族的成员,其参与基本的细胞过程。尽管AAA +蛋白无处不在表达并显示出不同的亚细胞定位,但Torsins是唯一存在于核膜(NE)和内质网(ER)网络中的AAA +。此外,由于缺乏完整的催化功能,Torsins需要NE和ER特异性调节辅因子,椎板相关多肽1(LAP1)和类似LAP1(LULL1)的腔结构域,以有效地触发其非典型模式的ATP水解。尽管它们涉及越来越多的各种过程,但在维持正常细胞生理方面,Torsin /辅因子装配体的具体贡献仍然很大。解决Torsins及其辅助因子的功能和机制原理方面的空白具有重要的医学意义,因为Torsin行为异常是运动障碍DYT1早发性肌张力障碍的主要原因。在这篇综述中,我们检查了有关受损的Torsin和辅因子活性的表型后果的最新发现。特别地,我们关注于NE缺陷的潜在分子特征以及Torsins对核孔复合体生物发生的贡献,以及Torsins在细胞脂质代谢中的日益增长的影响。此外,我们讨论了理解Torsins如何促进NE和ER的基本但尚未充分了解的过程的研究,并有助于发展肌张力障碍的治疗策略。

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