【2h】

From the Cover: Enzyme-like proteins by computational design

机译:从封面:通过计算设计的类酶蛋白

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摘要

We report the development and initial experimental validation of a computational design procedure aimed at generating enzyme-like protein catalysts called “protozymes.” Our design approach utilizes a “compute and build” strategy that is based on the physical/chemical principles governing protein stability and catalytic mechanism. By using the catalytically inert 108-residue Escherichia coli thioredoxin as a scaffold, the histidine-mediated nucleophilic hydrolysis of p-nitrophenyl acetate as a model reaction, and the ORBIT protein design software to compute sequences, an active site scan identified two promising catalytic positions and surrounding active-site mutations required for substrate binding. Experimentally, both candidate protozymes demonstrated catalytic activity significantly above background. One of the proteins, PZD2, displayed “burst” phase kinetics at high substrate concentrations, consistent with the formation of a stable enzyme intermediate. The kinetic parameters of PZD2 are comparable to early catalytic Abs. But, unlike catalytic Ab design, our design procedure is independent of fold, suggesting a possible mechanism for examining the relationships between protein fold and the evolvability of protein function.
机译:我们报告了一种计算设计程序的开发和初步实验验证,该程序旨在生成称为“原酶”的酶样蛋白质催化剂。我们的设计方法利用“计算和构建”策略,该策略基于控制蛋白质稳定性和催化机制的物理/化学原理。通过使用催化惰性的108个残留的大肠杆菌硫氧还蛋白作为支架,组氨酸介导的对硝基苯乙酸酯的亲核水解作为模型反应以及ORBIT蛋白设计软件来计算序列,活性位点扫描确定了两个有希望的催化位置以及底物结合所需的周围活性位点突变。实验上,两种候选的蛋白酶都显示出明显高于背景的催化活性。一种蛋白质,PZD2,在高底物浓度下表现出“爆发”相动力学,与稳定的酶中间体的形成一致。 PZD2的动力学参数与早期 催化吸收但是,与催化Ab设计不同,我们的设计程序是 与折叠无关,这表明检查 蛋白质折叠与蛋白质进化能力之间的关系 功能。

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