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毒素不稳定性及其在毒素从内质网向细胞质易位中的作用。

Toxin instability and its role in toxin translocation from the endoplasmic reticulum to the cytosol.

机构信息

Burnett School of Biomedical Sciences, College of Medicine, University of Central Florida, 12722 Research Parkway, Orlando, FL 32826, USA.

出版信息

Biomolecules. 2013 Dec 10;3(4):997-1029. doi: 10.3390/biom3040997.

Abstract

AB toxins enter a host cell by receptor-mediated endocytosis. The catalytic A chain then crosses the endosome or endoplasmic reticulum (ER) membrane to reach its cytosolic target. Dissociation of the A chain from the cell-binding B chain occurs before or during translocation to the cytosol, and only the A chain enters the cytosol. In some cases, AB subunit dissociation is facilitated by the unique physiology and function of the ER. The A chains of these ER-translocating toxins are stable within the architecture of the AB holotoxin, but toxin disassembly results in spontaneous or assisted unfolding of the isolated A chain. This unfolding event places the A chain in a translocation-competent conformation that promotes its export to the cytosol through the quality control mechanism of ER-associated degradation. A lack of lysine residues for ubiquitin conjugation protects the exported A chain from degradation by the ubiquitin-proteasome system, and an interaction with host factors allows the cytosolic toxin to regain a folded, active state. The intrinsic instability of the toxin A chain thus influences multiple steps of the intoxication process. This review will focus on the host-toxin interactions involved with A chain unfolding in the ER and A chain refolding in the cytosol.

摘要

AB 毒素通过受体介导的内吞作用进入宿主细胞。然后,催化 A 链穿过内体或内质网 (ER) 膜到达其胞质靶标。A 链从与细胞结合的 B 链解离发生在易位到胞质溶胶之前或期间,并且只有 A 链进入胞质溶胶。在某些情况下,AB 亚基的解离是由 ER 的独特生理学和功能促进的。这些内质网易位毒素的 A 链在 AB 全毒素的结构内是稳定的,但毒素的解体导致分离的 A 链自发或辅助展开。这种展开事件使 A 链处于易位能力构象中,通过 ER 相关降解的质量控制机制促进其输出到胞质溶胶。缺乏用于泛素缀合的赖氨酸残基可保护输出的 A 链免受泛素-蛋白酶体系统的降解,并且与宿主因子的相互作用允许胞质溶胶毒素恢复折叠的、有活性的状态。因此,毒素 A 链的固有不稳定性影响中毒过程的多个步骤。本综述将重点介绍涉及内质网中 A 链展开和胞质溶胶中 A 链重折叠的宿主-毒素相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e712/4030972/2c5e92c0a844/biomolecules-03-00997-g001.jpg

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