细胞外基质受体肌冻蛋白调节蛋白水解裂解的分子基础

IF 4.4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Structure Pub Date : 2024-09-20 DOI:10.1016/j.str.2024.08.019
Michael J.M. Anderson, Amanda N. Hayward, Adam T. Smiley, Ke Shi, Matthew R. Pawlak, Eric J. Aird, Eva Grant, Lauren Greenberg, Hideki Aihara, Robert L. Evans, Christopher Ulens, Wendy R. Gordon
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引用次数: 0

摘要

肌营养蛋白-糖蛋白复合物(DGC)由跨膜蛋白肌营养蛋白锚定,具有机械连接细胞外基质和肌动蛋白细胞骨架的功能。破坏这种连接与肌肉萎缩症等疾病有关,但基质金属蛋白酶(MMPs)对淀粉样糖的裂解仍是破坏 DGC 的一种未被充分研究的机制。我们测定了大肠杆菌表达的人类肌营养不良症蛋白的膜邻接结构域(491-722 氨基酸)的晶体结构,以了解 MMP 的裂解调控。该结构模型包括串联免疫球蛋白样(IGL)结构域和精子/肠激酶/异体蛋白样(SEAL)结构域,它们支持不同受体的蛋白水解,以促进机械传导、膜保护和病毒进入。该结构揭示了一个 C 端延伸,它通过填入一个疏水袋来掩埋 MMP 位点,这是一种独特的 MMP 裂解调节机制。我们还利用细胞表面蛋白水解试验进一步证明了结构引导和疾病相关突变会破坏蛋白水解调节。因此,蛋白水解紊乱是 "打破 "DGC 链接并导致疾病发病的潜在相关机制。
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Molecular basis of proteolytic cleavage regulation by the extracellular matrix receptor dystroglycan

The dystrophin-glycoprotein-complex (DGC), anchored by the transmembrane protein dystroglycan, functions to mechanically link the extracellular matrix and actin cytoskeleton. Breaking this connection is associated with diseases such as muscular dystrophy, yet cleavage of dystroglycan by matrix-metalloproteinases (MMPs) remains an understudied mechanism to disrupt the DGC. We determined the crystal structure of the membrane-adjacent domain (amino acids 491–722) of E. coli expressed human dystroglycan to understand MMP cleavage regulation. The structural model includes tandem immunoglobulin-like (IGL) and sperm/enterokinase/agrin-like (SEAL) domains, which support proteolysis in diverse receptors to facilitate mechanotransduction, membrane protection, and viral entry. The structure reveals a C-terminal extension that buries the MMP site by packing into a hydrophobic pocket, a unique mechanism of MMP cleavage regulation. We further demonstrate structure-guided and disease-associated mutations disrupt proteolytic regulation using a cell-surface proteolysis assay. Thus disrupted proteolysis is a potentially relevant mechanism for “breaking” the DGC link to contribute to disease pathogenesis.

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来源期刊
Structure
Structure 生物-生化与分子生物学
CiteScore
8.90
自引率
1.80%
发文量
155
审稿时长
3-8 weeks
期刊介绍: Structure aims to publish papers of exceptional interest in the field of structural biology. The journal strives to be essential reading for structural biologists, as well as biologists and biochemists that are interested in macromolecular structure and function. Structure strongly encourages the submission of manuscripts that present structural and molecular insights into biological function and mechanism. Other reports that address fundamental questions in structural biology, such as structure-based examinations of protein evolution, folding, and/or design, will also be considered. We will consider the application of any method, experimental or computational, at high or low resolution, to conduct structural investigations, as long as the method is appropriate for the biological, functional, and mechanistic question(s) being addressed. Likewise, reports describing single-molecule analysis of biological mechanisms are welcome. In general, the editors encourage submission of experimental structural studies that are enriched by an analysis of structure-activity relationships and will not consider studies that solely report structural information unless the structure or analysis is of exceptional and broad interest. Studies reporting only homology models, de novo models, or molecular dynamics simulations are also discouraged unless the models are informed by or validated by novel experimental data; rationalization of a large body of existing experimental evidence and making testable predictions based on a model or simulation is often not considered sufficient.
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