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Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity

Enzymatic promiscuity, the ability of enzymes to catalyze multiple, distinct chemical reactions, has been well documented and is hypothesized to be a major driver for the emergence of new enzymatic functions. Yet, the molecular mechanisms involved in the transition from one activity to another remai...

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Autores principales: Jacquet, Pauline, Billot, Raphaël, Shimon, Amir, Hoekstra, Nathan, Bergonzi, Céline, Jenks, Anthony, Chabrière, Eric, Daudé, David, Elias, Mikael H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10245850/
https://www.ncbi.nlm.nih.gov/pubmed/37292757
http://dx.doi.org/10.1101/2023.05.22.541809
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author Jacquet, Pauline
Billot, Raphaël
Shimon, Amir
Hoekstra, Nathan
Bergonzi, Céline
Jenks, Anthony
Chabrière, Eric
Daudé, David
Elias, Mikael H.
author_facet Jacquet, Pauline
Billot, Raphaël
Shimon, Amir
Hoekstra, Nathan
Bergonzi, Céline
Jenks, Anthony
Chabrière, Eric
Daudé, David
Elias, Mikael H.
author_sort Jacquet, Pauline
collection PubMed
description Enzymatic promiscuity, the ability of enzymes to catalyze multiple, distinct chemical reactions, has been well documented and is hypothesized to be a major driver for the emergence of new enzymatic functions. Yet, the molecular mechanisms involved in the transition from one activity to another remain debated and elusive. Here, we evaluated the redesign of the active site binding cleft of the lactonase SsoPox using structure-based design and combinatorial libraries. We created variants with largely improved catalytic abilities against phosphotriesters, the best ones being > 1,000-fold better compared to the wild-type enzyme. The observed shifts in activity specificity are large, ~1,000,000-fold and beyond, since some variants completely lost their initial activity. The selected combinations of mutations have considerably reshaped the active site cavity via side chain changes but mostly through large rearrangements of the active site loops, as revealed by a suite of crystal structures. This suggests that specific active site loop configuration is critical to the lactonase activity. Interestingly, analysis of high-resolution structures hints at the potential role of conformational sampling and its directionality in defining an enzyme activity profile.
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spelling pubmed-102458502023-06-08 Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity Jacquet, Pauline Billot, Raphaël Shimon, Amir Hoekstra, Nathan Bergonzi, Céline Jenks, Anthony Chabrière, Eric Daudé, David Elias, Mikael H. bioRxiv Article Enzymatic promiscuity, the ability of enzymes to catalyze multiple, distinct chemical reactions, has been well documented and is hypothesized to be a major driver for the emergence of new enzymatic functions. Yet, the molecular mechanisms involved in the transition from one activity to another remain debated and elusive. Here, we evaluated the redesign of the active site binding cleft of the lactonase SsoPox using structure-based design and combinatorial libraries. We created variants with largely improved catalytic abilities against phosphotriesters, the best ones being > 1,000-fold better compared to the wild-type enzyme. The observed shifts in activity specificity are large, ~1,000,000-fold and beyond, since some variants completely lost their initial activity. The selected combinations of mutations have considerably reshaped the active site cavity via side chain changes but mostly through large rearrangements of the active site loops, as revealed by a suite of crystal structures. This suggests that specific active site loop configuration is critical to the lactonase activity. Interestingly, analysis of high-resolution structures hints at the potential role of conformational sampling and its directionality in defining an enzyme activity profile. Cold Spring Harbor Laboratory 2023-05-26 /pmc/articles/PMC10245850/ /pubmed/37292757 http://dx.doi.org/10.1101/2023.05.22.541809 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Jacquet, Pauline
Billot, Raphaël
Shimon, Amir
Hoekstra, Nathan
Bergonzi, Céline
Jenks, Anthony
Chabrière, Eric
Daudé, David
Elias, Mikael H.
Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity
title Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity
title_full Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity
title_fullStr Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity
title_full_unstemmed Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity
title_short Changes in Active Site Loop Conformation Relate to the Transition toward a Novel Enzymatic Activity
title_sort changes in active site loop conformation relate to the transition toward a novel enzymatic activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10245850/
https://www.ncbi.nlm.nih.gov/pubmed/37292757
http://dx.doi.org/10.1101/2023.05.22.541809
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