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Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases

While there has been emerging interest in designing new enzymes to solve practical challenges, computer-based options to redesign catalytically active proteins are rather limited. Here, a rational QM/MM molecular dynamics strategy based on combining the best electrostatic properties of enzymes with...

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Autores principales: Galmés, Miquel À., Nödling, Alexander R., He, Kaining, Luk, Louis Y. P., Świderek, Katarzyna, Moliner, Vicent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9067594/
https://www.ncbi.nlm.nih.gov/pubmed/35655887
http://dx.doi.org/10.1039/d2sc00778a
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author Galmés, Miquel À.
Nödling, Alexander R.
He, Kaining
Luk, Louis Y. P.
Świderek, Katarzyna
Moliner, Vicent
author_facet Galmés, Miquel À.
Nödling, Alexander R.
He, Kaining
Luk, Louis Y. P.
Świderek, Katarzyna
Moliner, Vicent
author_sort Galmés, Miquel À.
collection PubMed
description While there has been emerging interest in designing new enzymes to solve practical challenges, computer-based options to redesign catalytically active proteins are rather limited. Here, a rational QM/MM molecular dynamics strategy based on combining the best electrostatic properties of enzymes with activity in a common reaction is presented. The computational protocol has been applied to the re-design of the protein scaffold of an existing promiscuous esterase from Bacillus subtilis Bs2 to enhance its secondary amidase activity. After the alignment of Bs2 with a non-homologous amidase Candida antarctica lipase B (CALB) within rotation quaternions, a relevant spatial aspartate residue of the latter was transferred to the former as a means to favor the electrostatics of transition state formation, where a clear separation of charges takes place. Deep computational insights, however, revealed a significant conformational change caused by the amino acid replacement, provoking a shift in the pK(a) of the inserted aspartate and counteracting the anticipated catalytic effect. This prediction was experimentally confirmed with a 1.3-fold increase in activity. The good agreement between theoretical and experimental results, as well as the linear correlation between the electrostatic properties and the activation energy barriers, suggest that the presented computational-based investigation can transform in an enzyme engineering approach.
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spelling pubmed-90675942022-06-01 Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases Galmés, Miquel À. Nödling, Alexander R. He, Kaining Luk, Louis Y. P. Świderek, Katarzyna Moliner, Vicent Chem Sci Chemistry While there has been emerging interest in designing new enzymes to solve practical challenges, computer-based options to redesign catalytically active proteins are rather limited. Here, a rational QM/MM molecular dynamics strategy based on combining the best electrostatic properties of enzymes with activity in a common reaction is presented. The computational protocol has been applied to the re-design of the protein scaffold of an existing promiscuous esterase from Bacillus subtilis Bs2 to enhance its secondary amidase activity. After the alignment of Bs2 with a non-homologous amidase Candida antarctica lipase B (CALB) within rotation quaternions, a relevant spatial aspartate residue of the latter was transferred to the former as a means to favor the electrostatics of transition state formation, where a clear separation of charges takes place. Deep computational insights, however, revealed a significant conformational change caused by the amino acid replacement, provoking a shift in the pK(a) of the inserted aspartate and counteracting the anticipated catalytic effect. This prediction was experimentally confirmed with a 1.3-fold increase in activity. The good agreement between theoretical and experimental results, as well as the linear correlation between the electrostatic properties and the activation energy barriers, suggest that the presented computational-based investigation can transform in an enzyme engineering approach. The Royal Society of Chemistry 2022-03-15 /pmc/articles/PMC9067594/ /pubmed/35655887 http://dx.doi.org/10.1039/d2sc00778a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Galmés, Miquel À.
Nödling, Alexander R.
He, Kaining
Luk, Louis Y. P.
Świderek, Katarzyna
Moliner, Vicent
Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
title Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
title_full Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
title_fullStr Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
title_full_unstemmed Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
title_short Computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
title_sort computational design of an amidase by combining the best electrostatic features of two promiscuous hydrolases
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9067594/
https://www.ncbi.nlm.nih.gov/pubmed/35655887
http://dx.doi.org/10.1039/d2sc00778a
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