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可变剪接 XBP1u 的跨膜结构域决定了信号肽酶对内质网蛋白水解的作用。

The Metastable XBP1u Transmembrane Domain Defines Determinants for Intramembrane Proteolysis by Signal Peptide Peptidase.

机构信息

Center for Molecular Biology of Heidelberg University (ZMBH), DKFZ-ZMBH Alliance, Im Neuenheimer Feld 282, 69120 Heidelberg, Germany.

Center for Integrated Protein Science Munich (CIPSM) at the Lehrstuhl Chemie der Biopolymere, Technical University of Munich, Weihenstephaner Berg 3, 85354 Freising, Germany.

出版信息

Cell Rep. 2019 Mar 12;26(11):3087-3099.e11. doi: 10.1016/j.celrep.2019.02.057.

Abstract

Unspliced XBP1 mRNA encodes XBP1u, the transcriptionally inert variant of the unfolded protein response (UPR) transcription factor XBP1s. XBP1u targets its mRNA-ribosome-nascent-chain-complex to the endoplasmic reticulum (ER) to facilitate UPR activation and prevents overactivation. Yet, its membrane association is controversial. Here, we use cell-free translocation and cellular assays to define a moderately hydrophobic stretch in XBP1u that is sufficient to mediate insertion into the ER membrane. Mutagenesis of this transmembrane (TM) region reveals residues that facilitate XBP1u turnover by an ER-associated degradation route that is dependent on signal peptide peptidase (SPP). Furthermore, the impact of these mutations on TM helix dynamics was assessed by residue-specific amide exchange kinetics, evaluated by a semi-automated algorithm. Based on our results, we suggest that SPP-catalyzed intramembrane proteolysis of TM helices is not only determined by their conformational flexibility, but also by side-chain interactions near the scissile peptide bond with the enzyme's active site.

摘要

未剪接的 XBP1 mRNA 编码 XBP1u,它是未折叠蛋白反应 (UPR) 转录因子 XBP1s 的转录无活性变体。XBP1u 将其 mRNA-核糖体-新生肽链复合物靶向内质网 (ER),以促进 UPR 激活并防止过度激活。然而,其膜结合一直存在争议。在这里,我们使用无细胞易位和细胞测定来定义 XBP1u 中的一段适度疏水的延伸,该延伸足以介导插入内质网膜。对这个跨膜 (TM) 区域的突变显示出残基可以促进 XBP1u 通过内质网相关降解途径的周转,该途径依赖于信号肽肽酶 (SPP)。此外,通过半自动化算法评估残基特异性酰胺交换动力学来评估这些突变对 TM 螺旋动力学的影响。基于我们的结果,我们提出 SPP 催化的 TM 螺旋的跨膜蛋白酶解不仅由其构象灵活性决定,还由与酶活性位点的切割肽键附近的侧链相互作用决定。

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