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Automated Structure- and Sequence-Based Design of Proteins for High Bacterial Expression and Stability

机译:自动化的基于结构和序列的蛋白质设计,可实现高细菌表达和稳定性

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摘要

Upon heterologous overexpression, many proteins misfold or aggregate, thus resulting in low functional yields. Human acetylcholinesterase ( hAChE), an enzyme mediating synaptic transmission, is a typical case of a human protein that necessitates mammalian systems to obtain functional expression. We developed a computational strategy and designed an AChE variant bearing 51 mutations that improved core packing, surface polarity, and backbone rigidity. This variant expressed at similar to 2,000-fold higher levels in E. coli compared to wild-type hAChE and exhibited 20 degrees C higher thermostability with no change in enzymatic properties or in the active-site configuration as determined by crystallography. To demonstrate broad utility, we similarly designed four other human and bacterial proteins. Testing at most three designs per protein, we obtained enhanced stability and/or higher yields of soluble and active protein in E. coli. Our algorithm requires only a 3D structure and several dozen sequences of naturally occurring homologs, and is available at http://pross.weizmann.ac.il.
机译:异源过表达后,许多蛋白质会错误折叠或聚集,从而导致较低的功能产量。人乙酰胆碱酯酶(hAChE)是一种介导突触传递的酶,是人蛋白的典型案例,需要哺乳动物系统才能获得功能性表达。我们开发了一种计算策略,并设计了一个带有51个突变的AChE变异体,从而改善了核的堆积,表面极性和骨架刚性。与野生型hAChE相比,该变体在大肠杆菌中的表达水平高出2,000倍,并且表现出更高的20℃热稳定性,而酶学性质或晶体学测定的活性位点构型没有变化。为了证明其广泛的用途,我们类似地设计了其他四种人类和细菌蛋白。测试每种蛋白质最多三种设计,我们在大肠杆菌中获得了更高的稳定性和/或更高的可溶性和活性蛋白质产量。我们的算法仅需要3D结构和数十个自然存在的同源物序列,可从http://pross.weizmann.ac.il获得。

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