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Energy Landscapes and Catalysis in Nitric-oxide Synthase

Nitric oxide (NO) plays diverse roles in mammalian physiology. It is involved in blood pressure regulation, neurotransmission, and immune response, and is generated through complex electron transfer reactions catalyzed by NO synthases (NOS). In neuronal NOS (nNOS), protein domain dynamics and calmod...

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Autores principales: Sobolewska-Stawiarz, Anna, Leferink, Nicole G. H., Fisher, Karl, Heyes, Derren J., Hay, Sam, Rigby, Stephen E. J., Scrutton, Nigel S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4002082/
https://www.ncbi.nlm.nih.gov/pubmed/24610812
http://dx.doi.org/10.1074/jbc.M114.548834
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author Sobolewska-Stawiarz, Anna
Leferink, Nicole G. H.
Fisher, Karl
Heyes, Derren J.
Hay, Sam
Rigby, Stephen E. J.
Scrutton, Nigel S.
author_facet Sobolewska-Stawiarz, Anna
Leferink, Nicole G. H.
Fisher, Karl
Heyes, Derren J.
Hay, Sam
Rigby, Stephen E. J.
Scrutton, Nigel S.
author_sort Sobolewska-Stawiarz, Anna
collection PubMed
description Nitric oxide (NO) plays diverse roles in mammalian physiology. It is involved in blood pressure regulation, neurotransmission, and immune response, and is generated through complex electron transfer reactions catalyzed by NO synthases (NOS). In neuronal NOS (nNOS), protein domain dynamics and calmodulin binding are implicated in regulating electron flow from NADPH, through the FAD and FMN cofactors, to the heme oxygenase domain, the site of NO generation. Simple models based on crystal structures of nNOS reductase have invoked a role for large scale motions of the FMN-binding domain in shuttling electrons from the FAD-binding domain to the heme oxygenase domain. However, molecular level insight of the dynamic structural transitions in NOS enzymes during enzyme catalysis is lacking. We use pulsed electron-electron double resonance spectroscopy to derive inter-domain distance relationships in multiple conformational states of nNOS. These distance relationships are correlated with enzymatic activity through variable pressure kinetic studies of electron transfer and turnover. The binding of NADPH and calmodulin are shown to influence interdomain distance relationships as well as reaction chemistry. An important effect of calmodulin binding is to suppress adventitious electron transfer from nNOS to molecular oxygen and thereby preventing accumulation of reactive oxygen species. A complex landscape of conformations is required for nNOS catalysis beyond the simple models derived from static crystal structures of nNOS reductase. Detailed understanding of this landscape advances our understanding of nNOS catalysis/electron transfer, and could provide new opportunities for the discovery of small molecule inhibitors that bind at dynamic protein interfaces of this multidimensional energy landscape.
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spelling pubmed-40020822014-04-30 Energy Landscapes and Catalysis in Nitric-oxide Synthase Sobolewska-Stawiarz, Anna Leferink, Nicole G. H. Fisher, Karl Heyes, Derren J. Hay, Sam Rigby, Stephen E. J. Scrutton, Nigel S. J Biol Chem Enzymology Nitric oxide (NO) plays diverse roles in mammalian physiology. It is involved in blood pressure regulation, neurotransmission, and immune response, and is generated through complex electron transfer reactions catalyzed by NO synthases (NOS). In neuronal NOS (nNOS), protein domain dynamics and calmodulin binding are implicated in regulating electron flow from NADPH, through the FAD and FMN cofactors, to the heme oxygenase domain, the site of NO generation. Simple models based on crystal structures of nNOS reductase have invoked a role for large scale motions of the FMN-binding domain in shuttling electrons from the FAD-binding domain to the heme oxygenase domain. However, molecular level insight of the dynamic structural transitions in NOS enzymes during enzyme catalysis is lacking. We use pulsed electron-electron double resonance spectroscopy to derive inter-domain distance relationships in multiple conformational states of nNOS. These distance relationships are correlated with enzymatic activity through variable pressure kinetic studies of electron transfer and turnover. The binding of NADPH and calmodulin are shown to influence interdomain distance relationships as well as reaction chemistry. An important effect of calmodulin binding is to suppress adventitious electron transfer from nNOS to molecular oxygen and thereby preventing accumulation of reactive oxygen species. A complex landscape of conformations is required for nNOS catalysis beyond the simple models derived from static crystal structures of nNOS reductase. Detailed understanding of this landscape advances our understanding of nNOS catalysis/electron transfer, and could provide new opportunities for the discovery of small molecule inhibitors that bind at dynamic protein interfaces of this multidimensional energy landscape. American Society for Biochemistry and Molecular Biology 2014-04-25 2014-03-07 /pmc/articles/PMC4002082/ /pubmed/24610812 http://dx.doi.org/10.1074/jbc.M114.548834 Text en © 2014 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/) applies to Author Choice Articles
spellingShingle Enzymology
Sobolewska-Stawiarz, Anna
Leferink, Nicole G. H.
Fisher, Karl
Heyes, Derren J.
Hay, Sam
Rigby, Stephen E. J.
Scrutton, Nigel S.
Energy Landscapes and Catalysis in Nitric-oxide Synthase
title Energy Landscapes and Catalysis in Nitric-oxide Synthase
title_full Energy Landscapes and Catalysis in Nitric-oxide Synthase
title_fullStr Energy Landscapes and Catalysis in Nitric-oxide Synthase
title_full_unstemmed Energy Landscapes and Catalysis in Nitric-oxide Synthase
title_short Energy Landscapes and Catalysis in Nitric-oxide Synthase
title_sort energy landscapes and catalysis in nitric-oxide synthase
topic Enzymology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4002082/
https://www.ncbi.nlm.nih.gov/pubmed/24610812
http://dx.doi.org/10.1074/jbc.M114.548834
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