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通过计算和结构引导设计,将磷酸肌醇底物特异性导入酪氨酸特异性 LMW-PTP 酶。

Computational and structure-guided design of phosphoinositide substrate specificity into the tyrosine specific LMW-PTP enzyme.

机构信息

School of Biological Sciences, Faculty of Biology Medicine and Health, University of Manchester, Manchester Academic Health Science Centre, Manchester, England, United Kingdom.

出版信息

PLoS One. 2020 Jun 25;15(6):e0235133. doi: 10.1371/journal.pone.0235133. eCollection 2020.

Abstract

We have used a combination of computational and structure-based redesign of the low molecular weight protein tyrosine phosphatase, LMW-PTP, to create new activity towards phosphoinositide substrates for which the wild-type enzyme had little or no activity. The redesigned enzymes retain catalytic activity despite residue alterations in the active site, and kinetic experiments confirmed specificity for up to four phosphoinositide substrates. Changes in the shape and overall volume of the active site where critical to facilitate access of the new substrates for catalysis. The kinetics data suggest that both the position and the combination of amino acid mutations are important for specificity towards the phosphoinositide substrates. The introduction of basic residues proved essential to establish new interactions with the multiple phosphate groups in the inositol head, thus promoting catalytically productive complexes. The crystallographic structures of the top-ranking designs confirmed the computational predictions and showed that residue substitutions do not alter the overall folding of the phosphatase or the conformation of the active site P-loop. The engineered LMW-PTP mutants with new activities can be useful reagents in investigating cell signalling pathways and offer the potential for therapeutic applications.

摘要

我们结合使用计算和基于结构的设计方法,对低分子量蛋白酪氨酸磷酸酶(LMW-PTP)进行重新设计,以针对野生型酶几乎没有活性或没有活性的磷酸肌醇底物创造新的活性。尽管在活性位点发生了残基改变,重新设计的酶仍保留了催化活性,并且动力学实验证实了对多达四种磷酸肌醇底物的特异性。活性位点形状和整体体积的变化对于促进新底物进入催化至关重要。动力学数据表明,氨基酸突变的位置和组合对于磷酸肌醇底物的特异性都很重要。引入碱性残基被证明对于与肌醇头部的多个磷酸基团建立新的相互作用至关重要,从而促进了催化上有生产力的复合物的形成。排名最高的设计的晶体结构证实了计算预测,并表明取代残基不会改变磷酸酶的整体折叠或活性位点 P 环的构象。具有新活性的工程化 LMW-PTP 突变体可以成为研究细胞信号通路的有用试剂,并为治疗应用提供了潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cb4/7316235/59c9bf5c601f/pone.0235133.g001.jpg

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