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Design of activated serine-containing catalytic triads with atomic level accuracy

A challenge in the computational design of enzymes is that multiple properties must be simultaneously optimized -- substrate-binding, transition state stabilization, and product release -- and this has limited the absolute activity of successful designs. Here, we focus on a single critical property...

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Autores principales: Rajagopalan, Sridharan, Wang, Chu, Yu, Kai, Kuzin, Alexandre P., Richter, Florian, Lew, Scott, Miklos, Aleksandr E., Matthews, Megan L., Seetharaman, Jayaraman, Su, Min, Hunt, John. F., Cravatt, Benjamin F., Baker, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4048123/
https://www.ncbi.nlm.nih.gov/pubmed/24705591
http://dx.doi.org/10.1038/nchembio.1498
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author Rajagopalan, Sridharan
Wang, Chu
Yu, Kai
Kuzin, Alexandre P.
Richter, Florian
Lew, Scott
Miklos, Aleksandr E.
Matthews, Megan L.
Seetharaman, Jayaraman
Su, Min
Hunt, John. F.
Cravatt, Benjamin F.
Baker, David
author_facet Rajagopalan, Sridharan
Wang, Chu
Yu, Kai
Kuzin, Alexandre P.
Richter, Florian
Lew, Scott
Miklos, Aleksandr E.
Matthews, Megan L.
Seetharaman, Jayaraman
Su, Min
Hunt, John. F.
Cravatt, Benjamin F.
Baker, David
author_sort Rajagopalan, Sridharan
collection PubMed
description A challenge in the computational design of enzymes is that multiple properties must be simultaneously optimized -- substrate-binding, transition state stabilization, and product release -- and this has limited the absolute activity of successful designs. Here, we focus on a single critical property of many enzymes: the nucleophilicity of an active site residue that initiates catalysis. We design proteins with idealized serine-containing catalytic triads, and assess their nucleophilicity directly in native biological systems using activity-based organophosphate probes. Crystal structures of the most successful designs show unprecedented agreement with computational models, including extensive hydrogen bonding networks between the catalytic triad (or quartet) residues, and mutagenesis experiments demonstrate that these networks are critical for serine activation and organophosphate-reactivity. Following optimization by yeast-display, the designs react with organophosphate probes at rates comparable to natural serine hydrolases. Co-crystal structures with diisopropyl fluorophosphate bound to the serine nucleophile suggest the designs could provide the basis for a new class of organophosphate captures agents.
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spelling pubmed-40481232014-11-01 Design of activated serine-containing catalytic triads with atomic level accuracy Rajagopalan, Sridharan Wang, Chu Yu, Kai Kuzin, Alexandre P. Richter, Florian Lew, Scott Miklos, Aleksandr E. Matthews, Megan L. Seetharaman, Jayaraman Su, Min Hunt, John. F. Cravatt, Benjamin F. Baker, David Nat Chem Biol Article A challenge in the computational design of enzymes is that multiple properties must be simultaneously optimized -- substrate-binding, transition state stabilization, and product release -- and this has limited the absolute activity of successful designs. Here, we focus on a single critical property of many enzymes: the nucleophilicity of an active site residue that initiates catalysis. We design proteins with idealized serine-containing catalytic triads, and assess their nucleophilicity directly in native biological systems using activity-based organophosphate probes. Crystal structures of the most successful designs show unprecedented agreement with computational models, including extensive hydrogen bonding networks between the catalytic triad (or quartet) residues, and mutagenesis experiments demonstrate that these networks are critical for serine activation and organophosphate-reactivity. Following optimization by yeast-display, the designs react with organophosphate probes at rates comparable to natural serine hydrolases. Co-crystal structures with diisopropyl fluorophosphate bound to the serine nucleophile suggest the designs could provide the basis for a new class of organophosphate captures agents. 2014-04-06 2014-05 /pmc/articles/PMC4048123/ /pubmed/24705591 http://dx.doi.org/10.1038/nchembio.1498 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Rajagopalan, Sridharan
Wang, Chu
Yu, Kai
Kuzin, Alexandre P.
Richter, Florian
Lew, Scott
Miklos, Aleksandr E.
Matthews, Megan L.
Seetharaman, Jayaraman
Su, Min
Hunt, John. F.
Cravatt, Benjamin F.
Baker, David
Design of activated serine-containing catalytic triads with atomic level accuracy
title Design of activated serine-containing catalytic triads with atomic level accuracy
title_full Design of activated serine-containing catalytic triads with atomic level accuracy
title_fullStr Design of activated serine-containing catalytic triads with atomic level accuracy
title_full_unstemmed Design of activated serine-containing catalytic triads with atomic level accuracy
title_short Design of activated serine-containing catalytic triads with atomic level accuracy
title_sort design of activated serine-containing catalytic triads with atomic level accuracy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4048123/
https://www.ncbi.nlm.nih.gov/pubmed/24705591
http://dx.doi.org/10.1038/nchembio.1498
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