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Structure and Mechanism of a Cold-Adapted Bacterial Lipase

[Image: see text] The structural origin of enzyme cold-adaptation has been the subject of considerable research efforts in recent years. Comparative studies of orthologous mesophilic–psychrophilic enzyme pairs found in nature are an obvious strategy for solving this problem, but they often suffer fr...

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Autores principales: van der Ent, Florian, Lund, Bjarte A., Svalberg, Linn, Purg, Miha, Chukwu, Ghislean, Widersten, Mikael, Isaksen, Geir V., Brandsdal, Bjørn O., Åqvist, Johan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9118546/
https://www.ncbi.nlm.nih.gov/pubmed/35503728
http://dx.doi.org/10.1021/acs.biochem.2c00087
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author van der Ent, Florian
Lund, Bjarte A.
Svalberg, Linn
Purg, Miha
Chukwu, Ghislean
Widersten, Mikael
Isaksen, Geir V.
Brandsdal, Bjørn O.
Åqvist, Johan
author_facet van der Ent, Florian
Lund, Bjarte A.
Svalberg, Linn
Purg, Miha
Chukwu, Ghislean
Widersten, Mikael
Isaksen, Geir V.
Brandsdal, Bjørn O.
Åqvist, Johan
author_sort van der Ent, Florian
collection PubMed
description [Image: see text] The structural origin of enzyme cold-adaptation has been the subject of considerable research efforts in recent years. Comparative studies of orthologous mesophilic–psychrophilic enzyme pairs found in nature are an obvious strategy for solving this problem, but they often suffer from relatively low sequence identity of the enzyme pairs. Small bacterial lipases adapted to distinctly different temperatures appear to provide an excellent model system for these types of studies, as they may show a very high degree of sequence conservation. Here, we report the first crystal structures of lipase A from the psychrophilic bacterium Bacillus pumilus, which confirm the high structural similarity to the mesophilic Bacillus subtilis enzyme, as indicated by their 81% sequence identity. We further employ extensive QM/MM calculations to delineate the catalytic reaction path and its energetics. The computational prediction of a rate-limiting deacylation step of the enzymatic ester hydrolysis reaction is verified by stopped-flow experiments, and steady-state kinetics confirms the psychrophilic nature of the B. pumilus enzyme. These results provide a useful benchmark for examining the structural basis of cold-adaptation and should now make it possible to disentangle the effects of the 34 mutations between the two enzymes on catalytic properties and thermal stability.
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spelling pubmed-91185462022-05-20 Structure and Mechanism of a Cold-Adapted Bacterial Lipase van der Ent, Florian Lund, Bjarte A. Svalberg, Linn Purg, Miha Chukwu, Ghislean Widersten, Mikael Isaksen, Geir V. Brandsdal, Bjørn O. Åqvist, Johan Biochemistry [Image: see text] The structural origin of enzyme cold-adaptation has been the subject of considerable research efforts in recent years. Comparative studies of orthologous mesophilic–psychrophilic enzyme pairs found in nature are an obvious strategy for solving this problem, but they often suffer from relatively low sequence identity of the enzyme pairs. Small bacterial lipases adapted to distinctly different temperatures appear to provide an excellent model system for these types of studies, as they may show a very high degree of sequence conservation. Here, we report the first crystal structures of lipase A from the psychrophilic bacterium Bacillus pumilus, which confirm the high structural similarity to the mesophilic Bacillus subtilis enzyme, as indicated by their 81% sequence identity. We further employ extensive QM/MM calculations to delineate the catalytic reaction path and its energetics. The computational prediction of a rate-limiting deacylation step of the enzymatic ester hydrolysis reaction is verified by stopped-flow experiments, and steady-state kinetics confirms the psychrophilic nature of the B. pumilus enzyme. These results provide a useful benchmark for examining the structural basis of cold-adaptation and should now make it possible to disentangle the effects of the 34 mutations between the two enzymes on catalytic properties and thermal stability. American Chemical Society 2022-05-03 2022-05-17 /pmc/articles/PMC9118546/ /pubmed/35503728 http://dx.doi.org/10.1021/acs.biochem.2c00087 Text en © 2022 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 van der Ent, Florian
Lund, Bjarte A.
Svalberg, Linn
Purg, Miha
Chukwu, Ghislean
Widersten, Mikael
Isaksen, Geir V.
Brandsdal, Bjørn O.
Åqvist, Johan
Structure and Mechanism of a Cold-Adapted Bacterial Lipase
title Structure and Mechanism of a Cold-Adapted Bacterial Lipase
title_full Structure and Mechanism of a Cold-Adapted Bacterial Lipase
title_fullStr Structure and Mechanism of a Cold-Adapted Bacterial Lipase
title_full_unstemmed Structure and Mechanism of a Cold-Adapted Bacterial Lipase
title_short Structure and Mechanism of a Cold-Adapted Bacterial Lipase
title_sort structure and mechanism of a cold-adapted bacterial lipase
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9118546/
https://www.ncbi.nlm.nih.gov/pubmed/35503728
http://dx.doi.org/10.1021/acs.biochem.2c00087
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