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Key feature of the catalytic cycle of TNF-α converting enzyme involves communication between distal protein sites and the enzyme catalytic core

机译:TNF-α转化酶催化循环的关键特征涉及远端蛋白位点与酶催化核心之间的通讯

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摘要

Despite their key roles in many normal and pathological processes, the molecular details by which zinc-dependent proteases hydrolyze their physiological substrates remain elusive. Advanced theoretical analyses have suggested reaction models for which there is limited and controversial experimental evidence. Here we report the structure, chemistry and lifetime of transient metal–protein reaction intermediates evolving during the substrate turnover reaction of a metalloproteinase, the tumor necrosis factor-α converting enzyme (TACE). TACE controls multiple signal transduction pathways through the proteolytic release of the extracellular domain of a host of membrane-bound factors and receptors. Using stopped-flow x-ray spectroscopy methods together with transient kinetic analyses, we demonstrate that TACE's catalytic zinc ion undergoes dynamic charge transitions before substrate binding to the metal ion. This indicates previously undescribed communication pathways taking place between distal protein sites and the enzyme catalytic core. The observed charge transitions are synchronized with distinct phases in the reaction kinetics and changes in metal coordination chemistry mediated by the binding of the peptide substrate to the catalytic metal ion and product release. Here we report key local charge transitions critical for proteolysis as well as long sought evidence for the proposed reaction model of peptide hydrolysis. This study provides a general approach for gaining critical insights into the molecular basis of substrate recognition and turnover by zinc metalloproteinases that may be used for drug design.
机译:尽管它们在许多正常和病理过程中起着关键作用,但锌依赖性蛋白酶水解其生理底物的分子细节仍然难以捉摸。先进的理论分析已提出了反应模型,但其实验证据有限且存在争议。在这里,我们报告了金属蛋白酶,肿瘤坏死因子-α转化酶(TACE)的底物周转反应过程中形成的瞬态金属-蛋白反应中间体的结构,化学性质和寿命。 TACE通过蛋白水解释放一系列膜结合因子和受体的胞外域来控制多种信号转导途径。使用停止流x射线光谱法和瞬态动力学分析,我们证明了TACE的催化锌离子在底物与金属离子结合之前经历了动态电荷跃迁。这表明在远端蛋白位点和酶催化核心之间发生了先前未描述的通信途径。观察到的电荷跃迁与反应动力学中不同的阶段以及由肽底物与催化金属离子的结合和产物释放介导的金属配位化学变化相同步。在这里,我们报告了对蛋白水解至关重要的关键局部电荷跃迁,以及为肽水解提出的反应模型所寻求的长期证据。这项研究提供了一种通用方法,可通过可用于药物设计的锌金属蛋白酶深入了解底物识别和转换的分子基础。

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