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Differential catalytic promiscuity of the alkaline phosphatase superfamily bimetallo core reveals mechanistic features underlying enzyme evolution

机译:碱性磷酸酶超家族双金属核的不同催化混杂性揭示了酶进化的机制特征

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摘要

Members of enzyme superfamilies specialize in different reactions but often exhibit catalytic promiscuity for one another's reactions, consistent with catalytic promiscuity as an important driver in the evolution of new enzymes. Wanting to understand how catalytic promiscuity and other factors may influence evolution across a superfamily, we turned to the well-studied alkaline phosphatase (AP) superfamily, comparing three of its members, two evolutionarily distinct phosphatases and a phosphodiesterase. We mutated distinguishing active-site residues to generate enzymes that had a common Zn2+ bimetallo core but little sequence similarity and different auxiliary domains. We then tested the catalytic capabilities of these pruned enzymes with a series of substrates. A substantial rate enhancement of ∼1011-fold for both phosphate mono- and diester hydrolysis by each enzyme indicated that the Zn2+ bimetallo core is an effective mono/di-esterase generalist and that the bimetallo cores were not evolutionarily tuned to prefer their cognate reactions. In contrast, our pruned enzymes were ineffective sulfatases, and this limited promiscuity may have provided a driving force for founding the distinct one-metal-ion branch that contains all known AP superfamily sulfatases. Finally, our pruned enzymes exhibited 107–108-fold phosphotriesterase rate enhancements, despite absence of such enzymes within the AP superfamily. We speculate that the superfamily active-site architecture involved in nucleophile positioning prevents accommodation of the additional triester substituent. Overall, we suggest that catalytic promiscuity, and the ease or difficulty of remodeling and building onto existing protein scaffolds, have greatly influenced the course of enzyme evolution. Uncovering principles and properties of enzyme function, promiscuity, and repurposing provides lessons for engineering new enzymes.
机译:酶超家族成员擅长于不同的反应,但经常对彼此的反应表现出催化性混杂,这与催化性混杂是新酶进化的重要推动力相一致。为了了解催化混杂和其他因素如何影响整个超家族的进化,我们转向研究充分的碱性磷酸酶(AP)超家族,比较了其三个成员,两个进化上不同的磷酸酶和磷酸二酯酶。我们突变了可区分的活性位点残基,以生成具有共同的Zn 2 + 双金属核但序列相似性和辅助结构域不同的酶。然后,我们用一系列底物测试了这些修剪的酶的催化能力。每种酶对磷酸酯单酯和二酯水解的速率均增加约10 11 倍,表明Zn 2 + 双金属核是有效的单/双-酯酶专家,并没有对双金属核进行进化调整以偏爱它们的同源反应。相反,我们修剪的酶是无效的硫酸酯酶,这种有限的混杂可能为建立包含所有已知的AP超家族硫酸酯酶的独特的单金属离子分支提供了动力。最后,尽管AP超家族中不存在此类酶,但我们修剪的酶仍显示出10 7 –10 8 倍磷酸三酯酶的速率增强。我们推测参与亲核试剂定位的超家族活性位点结构阻止了额外的三酯取代基的容纳。总的来说,我们认为催化的混杂以及在现有蛋白质支架上重塑和构建的难易程度都极大地影响了酶的进化过程。揭示酶功能,混杂性和用途的原理和特性为工程开发新酶提供了经验教训。

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