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Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity

[Image: see text] Conformational sampling profoundly impacts the overall activity and temperature dependence of enzymes. Peroxidases have emerged as versatile platforms for high-value biocatalysis owing to their broad palette of potential biotransformations. Here, we explore the role of conformation...

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Autores principales: Hindson, Sarah A., Bunzel, H. Adrian, Frank, Bettina, Svistunenko, Dimitri A., Williams, Christopher, van der Kamp, Marc W., Mulholland, Adrian J., Pudney, Christopher R., Anderson, J. L. Ross
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8453482/
https://www.ncbi.nlm.nih.gov/pubmed/34557328
http://dx.doi.org/10.1021/acscatal.1c01776
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author Hindson, Sarah A.
Bunzel, H. Adrian
Frank, Bettina
Svistunenko, Dimitri A.
Williams, Christopher
van der Kamp, Marc W.
Mulholland, Adrian J.
Pudney, Christopher R.
Anderson, J. L. Ross
author_facet Hindson, Sarah A.
Bunzel, H. Adrian
Frank, Bettina
Svistunenko, Dimitri A.
Williams, Christopher
van der Kamp, Marc W.
Mulholland, Adrian J.
Pudney, Christopher R.
Anderson, J. L. Ross
author_sort Hindson, Sarah A.
collection PubMed
description [Image: see text] Conformational sampling profoundly impacts the overall activity and temperature dependence of enzymes. Peroxidases have emerged as versatile platforms for high-value biocatalysis owing to their broad palette of potential biotransformations. Here, we explore the role of conformational sampling in mediating activity in the de novo peroxidase C45. We demonstrate that 2,2,2-triflouoroethanol (TFE) affects the equilibrium of enzyme conformational states, tending toward a more globally rigid structure. This is correlated with increases in both stability and activity. Notably, these effects are concomitant with the emergence of curvature in the temperature-activity profile, trading off activity gains at ambient temperature with losses at high temperatures. We apply macromolecular rate theory (MMRT) to understand enzyme temperature dependence data. These data point to an increase in protein rigidity associated with a difference in the distribution of protein dynamics between the ground and transition states. We compare the thermodynamics of the de novo enzyme activity to those of a natural peroxidase, horseradish peroxidase. We find that the native enzyme resembles the rigidified de novo enzyme in terms of the thermodynamics of enzyme catalysis and the putative distribution of protein dynamics between the ground and transition states. The addition of TFE apparently causes C45 to behave more like the natural enzyme. Our data suggest robust, generic strategies for improving biocatalytic activity by manipulating protein rigidity; for functional de novo protein catalysts in particular, this can provide more enzyme-like catalysts without further rational engineering, computational redesign, or directed evolution.
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spelling pubmed-84534822021-09-21 Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity Hindson, Sarah A. Bunzel, H. Adrian Frank, Bettina Svistunenko, Dimitri A. Williams, Christopher van der Kamp, Marc W. Mulholland, Adrian J. Pudney, Christopher R. Anderson, J. L. Ross ACS Catal [Image: see text] Conformational sampling profoundly impacts the overall activity and temperature dependence of enzymes. Peroxidases have emerged as versatile platforms for high-value biocatalysis owing to their broad palette of potential biotransformations. Here, we explore the role of conformational sampling in mediating activity in the de novo peroxidase C45. We demonstrate that 2,2,2-triflouoroethanol (TFE) affects the equilibrium of enzyme conformational states, tending toward a more globally rigid structure. This is correlated with increases in both stability and activity. Notably, these effects are concomitant with the emergence of curvature in the temperature-activity profile, trading off activity gains at ambient temperature with losses at high temperatures. We apply macromolecular rate theory (MMRT) to understand enzyme temperature dependence data. These data point to an increase in protein rigidity associated with a difference in the distribution of protein dynamics between the ground and transition states. We compare the thermodynamics of the de novo enzyme activity to those of a natural peroxidase, horseradish peroxidase. We find that the native enzyme resembles the rigidified de novo enzyme in terms of the thermodynamics of enzyme catalysis and the putative distribution of protein dynamics between the ground and transition states. The addition of TFE apparently causes C45 to behave more like the natural enzyme. Our data suggest robust, generic strategies for improving biocatalytic activity by manipulating protein rigidity; for functional de novo protein catalysts in particular, this can provide more enzyme-like catalysts without further rational engineering, computational redesign, or directed evolution. American Chemical Society 2021-09-01 2021-09-17 /pmc/articles/PMC8453482/ /pubmed/34557328 http://dx.doi.org/10.1021/acscatal.1c01776 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Hindson, Sarah A.
Bunzel, H. Adrian
Frank, Bettina
Svistunenko, Dimitri A.
Williams, Christopher
van der Kamp, Marc W.
Mulholland, Adrian J.
Pudney, Christopher R.
Anderson, J. L. Ross
Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity
title Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity
title_full Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity
title_fullStr Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity
title_full_unstemmed Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity
title_short Rigidifying a De Novo Enzyme Increases Activity and Induces a Negative Activation Heat Capacity
title_sort rigidifying a de novo enzyme increases activity and induces a negative activation heat capacity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8453482/
https://www.ncbi.nlm.nih.gov/pubmed/34557328
http://dx.doi.org/10.1021/acscatal.1c01776
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