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N-端乙酰化:一种重要的蛋白质修饰,作为应激反应的重要调节剂出现。

N-terminal acetylation: an essential protein modification emerges as an important regulator of stress responses.

机构信息

Heidelberg University, Centre for Organismal Studies Heidelberg, Heidelberg, Germany.

出版信息

J Exp Bot. 2018 Aug 31;69(19):4555-4568. doi: 10.1093/jxb/ery241.

Abstract

N-terminal acetylation (NTA) is a prevalent protein modification in eukaryotes. The majority of proteins are acetylated at their N-terminus in a co-translational manner by ribosome-associated N-terminal acetyltransferases (NATs). However, the recent discovery of Golgi membrane-localized NATs in metazoa, and plastid-localized NATs in plants challenged the dogma of static, co-translational imprinting of the proteome by NTA. Indeed, NTA by the cytosolic NatA is highly dynamic and under hormonal control in plants. Such active control has not been evidenced yet in other eukaryotes and might be an adaptation to the sessile lifestyle of plants forcing them to cope with diverse environmental challenges. The function of NTAs for individual proteins is distinct and yet unpredictable. In yeast and humans, NTA has been shown to affect protein-protein interactions, subcellular localization, folding, aggregation, or degradation of a handful of proteins. In particular, the impact of NTA on the protein turnover is documented by diverse examples in yeast. Consequently, NTA was recently dicovered to be a degradation signal in a distinct branch of the N-end rule pathway, ubiquitin-mediated proteolysis. In this review, we summarize the current knowledge on the NAT machinery in higher plants and discuss the potential function of NTA during biotic and abiotic stresses.

摘要

N 端乙酰化(NTA)是真核生物中普遍存在的一种蛋白质修饰方式。大多数蛋白质在核糖体相关的 N 端乙酰转移酶(NATs)的共翻译方式下在其 N 端被乙酰化。然而,最近在后生动物中发现了高尔基膜定位的 NATs,在植物中发现了质体定位的 NATs,这挑战了 NTA 对蛋白质组的静态、共翻译印记的教条。事实上,植物中细胞质 NatA 的 NTA 是高度动态的,并受激素控制。这种主动控制尚未在其他真核生物中得到证实,可能是植物固着生活方式的一种适应,迫使它们应对各种环境挑战。NTA 对个别蛋白质的功能是不同的,而且是不可预测的。在酵母和人类中,已经表明 NTA 会影响蛋白质-蛋白质相互作用、亚细胞定位、折叠、聚集或降解少数几种蛋白质。特别是,在酵母中,NTA 对蛋白质周转的影响有多种例子为证。因此,NTA 最近被发现是泛素介导的蛋白水解中 N 端规则途径的一个分支中的降解信号。在这篇综述中,我们总结了高等植物中 NAT 机制的最新知识,并讨论了 NTA 在生物和非生物胁迫期间的潜在功能。

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