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A general strategy for the evolution of bond-forming enzymes using yeast display

机译:利用酵母展示进化形成键的酶的一般策略

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摘要

The ability to routinely generate efficient protein catalysts of bond-forming reactions chosen by researchers, rather than nature, is a long-standing goal of the molecular life sciences. Here, we describe a directed evolution strategy for enzymes that catalyze, in principle, any bond-forming reaction. The system integrates yeast display, enzyme-mediated bioconjugation, and fluorescence-activated cell sorting to isolate cells expressing proteins that catalyze the coupling of two substrates chosen by the researcher. We validated the system using model screens for Staphylococcus aureus sortase A–catalyzed transpeptidation activity, resulting in enrichment factors of 6,000-fold after a single round of screening. We applied the system to evolve sortase A for improved catalytic activity. After eight rounds of screening, we isolated variants of sortase A with up to a 140-fold increase in LPETG-coupling activity compared with the starting wild-type enzyme. An evolved sortase variant enabled much more efficient labeling of LPETG-tagged human CD154 expressed on the surface of HeLa cells compared with wild-type sortase. Because the method developed here does not rely on any particular screenable or selectable property of the substrates or product, it represents a powerful alternative to existing enzyme evolution methods.
机译:常规地产生由研究人员而非自然界选择的形成键的反应的有效蛋白质催化剂的能力是分子生命科学的长期目标。在这里,我们描述了一种酶的定向进化策略,该酶原则上催化任何键形成反应。该系统整合了酵母展示,酶介导的生物结合和荧光激活的细胞分选,以分离表达能催化研究人员选择的两种底物偶联的蛋白质的细胞。我们使用模型筛选验证了该系统的金黄色葡萄球菌分选酶A催化的转肽活性,单轮筛选后产生了6000倍的富集因子。我们将系统应用于进化分选酶A,以提高催化活性。经过八轮筛选,我们分离了分选酶A的变体,与起始的野生型酶相比,LPETG偶联活性提高了140倍。与野生型分选酶相比,进化的分选酶变体能够更有效地标记在HeLa细胞表面表达的LPETG标签的人CD154。由于此处开发的方法不依赖于底物或产物的任何特定可筛选或可选择的特性,因此它是现有酶进化方法的有力替代品。

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