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Evolution of dynamical networks enhances catalysis in a designer enzyme

Evolution of dynamical networks enhances catalysis in a designer enzyme

来源:bioRxiv_logobioRxiv
英文摘要

Abstract Activation heat capacity is emerging as a crucial factor in enzyme thermoadaptation, as shown by non-Arrhenius behaviour of many natural enzymes1,2. However, its physical origin and relationship to evolution of catalytic activity remain uncertain. Here, we show that directed evolution of a computationally designed Kemp eliminase introduces dynamical changes that give rise to an activation heat capacity absent in the original design3. Extensive molecular dynamics simulations show that evolution results in the closure of solvent exposed loops and better packing of the active site with transition state stabilising residues. Remarkably, these changes give rise to a correlated dynamical network involving the transition state and large parts of the protein. This network tightens the transition state ensemble, which induces an activation heat capacity and thereby nonlinearity in the temperature dependence. Our results have implications for understanding enzyme evolution (e.g. in explaining the role of distal mutations and evolutionary tuning of dynamical responses) and suggest that integrating dynamics with design and evolution will accelerate the development of efficient novel enzymes.

Hilvert Donald、Mulholland Adrian J.、Bunzel H. Adrian、van der Kamp Marc W.、Arcus Vickery L.、Anderson J. L. Ross

Laboratory of Organic ChemistryCentre of Computational Chemistry, School of Chemistry, University of BristolSchool of Biochemistry, University of Bristol, University Walk||Centre of Computational Chemistry, School of Chemistry, University of BristolSchool of Biochemistry, University of Bristol, University Walk||Centre of Computational Chemistry, School of Chemistry, University of BristolSchool of Science, University of WaikatoSchool of Biochemistry, University of Bristol, University Walk

10.1101/2020.08.21.260885

生物化学生物物理学分子生物学

Hilvert Donald,Mulholland Adrian J.,Bunzel H. Adrian,van der Kamp Marc W.,Arcus Vickery L.,Anderson J. L. Ross.Evolution of dynamical networks enhances catalysis in a designer enzyme[EB/OL].(2025-03-28)[2025-05-16].https://www.biorxiv.org/content/10.1101/2020.08.21.260885.点此复制

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