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γ 组织蛋白酶结构分析揭示了对蛋白水解和连接底物的不同识别和加工。

Structural analyses of legumain γ reveal differential recognition and processing of proteolysis and ligation substrates.

机构信息

From the Department of Biosciences, University of Salzburg, Salzburg 5020, Austria.

From the Department of Biosciences, University of Salzburg, Salzburg 5020, Austria

出版信息

J Biol Chem. 2018 Jun 8;293(23):8934-8946. doi: 10.1074/jbc.M117.817031. Epub 2018 Apr 8.

Abstract

Legumain is a dual-function protease-peptide ligase whose activities are of great interest to researchers studying plant physiology and to biotechnological applications. However, the molecular mechanisms determining the specificities for proteolysis and ligation are unclear because structural information on the substrate recognition by a fully activated plant legumain is unavailable. Here, we present the X-ray structure of legumain isoform γ (AtLEGγ) in complex with the covalent peptidic Ac-YVAD chloromethyl ketone (CMK) inhibitor targeting the catalytic cysteine. Mapping of the specificity pockets preceding the substrate-cleavage site explained the known substrate preference. The comparison of inhibited and free AtLEGγ structures disclosed a substrate-induced disorder-order transition with synergistic rearrangements in the substrate-recognition sites. Docking and studies with an AtLEGγ ligase substrate, sunflower trypsin inhibitor (SFTI), revealed a canonical, protease substrate-like binding to the active site-binding pockets preceding and following the cleavage site. We found the interaction of the second residue after the scissile bond, P2'-S2', to be critical for deciding on proteolysis cyclization. -Isomerization of the cyclic peptide product triggered its release from the AtLEGγ active site and prevented inadvertent cleavage. The presented integrative mechanisms of proteolysis and ligation (transpeptidation) explain the interdependence of legumain and its preferred substrates and provide a rational framework for engineering optimized proteases, ligases, and substrates.

摘要

瓜氨酸内肽酶是一种具有双重功能的蛋白酶-肽连接酶,其活性引起了研究植物生理学和生物技术应用的研究人员的极大兴趣。 然而,决定蛋白水解和连接特异性的分子机制尚不清楚,因为缺乏关于完全激活的植物瓜氨酸内肽酶对底物识别的结构信息。 在这里,我们展示了与靶向催化半胱氨酸的共价肽 Ac-YVAD 氯甲基酮(CMK)抑制剂复合的瓜氨酸内肽酶同工型γ(AtLEGγ)的 X 射线结构。 对底物切割位点之前的特异性口袋进行定位,解释了已知的底物偏好。 比较抑制和游离的 AtLEGγ结构揭示了底物诱导的无序-有序转变,并在底物识别位点协同发生重排。 与瓜氨酸内肽酶连接酶底物向日葵胰蛋白酶抑制剂(SFTI)的对接和研究揭示了与活性位点结合口袋之前和之后的切割位点的典型蛋白酶底物样结合。 我们发现,在切割键之后的第二个残基 P2'-S2'的相互作用对于决定蛋白水解环化至关重要。 环状肽产物的 -异构化触发其从 AtLEGγ活性位点释放,并防止意外切割。 所提出的蛋白水解和连接(转肽)的综合机制解释了瓜氨酸内肽酶与其首选底物的相互依赖性,并为工程优化的蛋白酶,连接酶和底物提供了合理的框架。

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