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利用酵母表面展示和共进化模型对产气荚膜梭菌噬菌体溶素进行验证和稳定化。

Validation and Stabilization of a Prophage Lysin of Clostridium perfringens by Using Yeast Surface Display and Coevolutionary Models.

机构信息

Department of Chemical Engineering and Materials Science, University of Minnesota-Twin Cities, Minneapolis, Minnesota, USA.

Department of Chemical Engineering and Materials Science, University of Minnesota-Twin Cities, Minneapolis, Minnesota, USA

出版信息

Appl Environ Microbiol. 2019 May 2;85(10). doi: 10.1128/AEM.00054-19. Print 2019 May 15.

Abstract

Bacteriophage lysins are compelling antimicrobial proteins whose biotechnological utility and evolvability would be aided by elevated stability. Lysin catalytic domains, which evolved as modular entities distinct from cell wall binding domains, can be classified into one of several families with highly conserved structure and function, many of which contain thousands of annotated homologous sequences. Motivated by the quality of these evolutionary data, the performance of generative protein models incorporating coevolutionary information was analyzed to predict the stability of variants in a collection of 9,749 multimutants across 10 libraries diversified at different regions of a putative lysin from a prophage region of a genome. Protein stability was assessed via a yeast surface display assay with accompanying high-throughput sequencing. Statistical fitness of mutant sequences, derived from second-order Potts models inferred with different levels of sequence homolog information, was predictive of experimental stability with areas under the curve (AUCs) ranging from 0.78 to 0.85. To extract an experimentally derived model of stability, a logistic model with site-wise score contributions was regressed on the collection of multimutants. This achieved a cross-validated classification performance of 0.95. Using this experimentally derived model, 5 designs incorporating 5 or 6 mutations from multiple libraries were constructed. All designs retained enzymatic activity, with 4 of 5 increasing the melting temperature and with the highest-performing design achieving an improvement of +4°C. Bacteriophage lysins exhibit high specificity and activity toward host bacteria with which the phage coevolved. These properties of lysins make them attractive for use as antimicrobials. Although there has been significant effort to develop platforms for rapid lysin engineering, there have been numerous shortcomings when pursuing the ultrahigh throughput necessary for the discovery of rare combinations of mutations to improve performance. In addition to validation of a putative lysin and stabilization thereof, the experimental and computational methods presented here offer a new avenue for improving protein stability and are easily scalable to analysis of tens of millions of mutations in single experiments.

摘要

噬菌体溶菌酶是一种极具吸引力的抗菌蛋白,其生物技术应用和可进化性将得益于稳定性的提高。溶菌酶的催化结构域是作为与细胞壁结合结构域不同的模块化实体进化而来的,可以分为几个家族,这些家族具有高度保守的结构和功能,其中许多家族包含数千个注释的同源序列。受这些进化数据质量的启发,分析了包含共进化信息的生成蛋白质模型的性能,以预测包含 10 个文库的 9749 个多突变体集合中变体的稳定性,这些文库在一个基因组的噬菌体区域的假定溶菌酶的不同区域进行多样化。通过伴随高通量测序的酵母表面展示测定法评估蛋白质稳定性。从不同水平的序列同源信息推断出的二阶 Potts 模型得出的突变序列的统计适应性,对实验稳定性具有预测性,曲线下面积(AUC)范围为 0.78 至 0.85。为了提取稳定性的实验模型,使用带有站点得分贡献的逻辑回归模型对多突变体集合进行回归。这实现了 0.95 的交叉验证分类性能。使用该实验衍生模型,从多个文库中设计了 5 个包含 5 或 6 个突变的设计。所有设计都保留了酶活性,其中 4 个设计提高了熔点,表现最好的设计提高了+4°C。噬菌体溶菌酶对与其共同进化的宿主细菌表现出高度的特异性和活性。溶菌酶的这些特性使其成为有吸引力的抗菌剂。尽管已经有大量努力开发快速溶菌酶工程的平台,但在追求发现提高性能的罕见突变组合所需的超高通量时,存在许多缺点。除了验证假定的溶菌酶及其稳定性之外,本文提出的实验和计算方法还为提高蛋白质稳定性提供了新途径,并且可以轻松扩展到单个实验中对数千万个突变的分析。

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