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Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation

[Image: see text] Proteomics techniques have revealed that lysine acetylation is abundant in mitochondrial proteins. This study was undertaken (1) to determine the relationship between mitochondrial protein acetylation and insulin sensitivity in human skeletal muscle, identifying key acetylated prot...

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Autores principales: Mielke, Clinton, Lefort, Natalie, McLean, Carrie G., Cordova, Jeanine M., Langlais, Paul R., Bordner, Andrew J., Te, Jerez A., Ozkan, S. Banu, Willis, Wayne T., Mandarino, Lawrence J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4067143/
https://www.ncbi.nlm.nih.gov/pubmed/24884163
http://dx.doi.org/10.1021/bi401651e
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author Mielke, Clinton
Lefort, Natalie
McLean, Carrie G.
Cordova, Jeanine M.
Langlais, Paul R.
Bordner, Andrew J.
Te, Jerez A.
Ozkan, S. Banu
Willis, Wayne T.
Mandarino, Lawrence J.
author_facet Mielke, Clinton
Lefort, Natalie
McLean, Carrie G.
Cordova, Jeanine M.
Langlais, Paul R.
Bordner, Andrew J.
Te, Jerez A.
Ozkan, S. Banu
Willis, Wayne T.
Mandarino, Lawrence J.
author_sort Mielke, Clinton
collection PubMed
description [Image: see text] Proteomics techniques have revealed that lysine acetylation is abundant in mitochondrial proteins. This study was undertaken (1) to determine the relationship between mitochondrial protein acetylation and insulin sensitivity in human skeletal muscle, identifying key acetylated proteins, and (2) to use molecular modeling techniques to understand the functional consequences of acetylation of adenine nucleotide translocase 1 (ANT1), which we found to be abundantly acetylated. Eight lean and eight obese nondiabetic subjects had euglycemic clamps and muscle biopsies for isolation of mitochondrial proteins and proteomics analysis. A number of acetylated mitochondrial proteins were identified in muscle biopsies. Overall, acetylation of mitochondrial proteins was correlated with insulin action (r = 0.60; P < 0.05). Of the acetylated proteins, ANT1, which catalyzes ADP–ATP exchange across the inner mitochondrial membrane, was acetylated at lysines 10, 23, and 92. The extent of acetylation of lysine 23 decreased following exercise, depending on insulin sensitivity. Molecular dynamics modeling and ensemble docking simulations predicted the ADP binding site of ANT1 to be a pocket of positively charged residues, including lysine 23. Calculated ADP–ANT1 binding affinities were physiologically relevant and predicted substantial reductions in affinity upon acetylation of lysine 23. Insertion of these derived binding affinities as parameters into a complete mathematical description of ANT1 kinetics predicted marked reductions in adenine nucleotide flux resulting from acetylation of lysine 23. Therefore, acetylation of ANT1 could have dramatic physiological effects on ADP–ATP exchange. Dysregulation of acetylation of mitochondrial proteins such as ANT1 therefore could be related to changes in mitochondrial function that are associated with insulin resistance.
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spelling pubmed-40671432015-06-02 Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation Mielke, Clinton Lefort, Natalie McLean, Carrie G. Cordova, Jeanine M. Langlais, Paul R. Bordner, Andrew J. Te, Jerez A. Ozkan, S. Banu Willis, Wayne T. Mandarino, Lawrence J. Biochemistry [Image: see text] Proteomics techniques have revealed that lysine acetylation is abundant in mitochondrial proteins. This study was undertaken (1) to determine the relationship between mitochondrial protein acetylation and insulin sensitivity in human skeletal muscle, identifying key acetylated proteins, and (2) to use molecular modeling techniques to understand the functional consequences of acetylation of adenine nucleotide translocase 1 (ANT1), which we found to be abundantly acetylated. Eight lean and eight obese nondiabetic subjects had euglycemic clamps and muscle biopsies for isolation of mitochondrial proteins and proteomics analysis. A number of acetylated mitochondrial proteins were identified in muscle biopsies. Overall, acetylation of mitochondrial proteins was correlated with insulin action (r = 0.60; P < 0.05). Of the acetylated proteins, ANT1, which catalyzes ADP–ATP exchange across the inner mitochondrial membrane, was acetylated at lysines 10, 23, and 92. The extent of acetylation of lysine 23 decreased following exercise, depending on insulin sensitivity. Molecular dynamics modeling and ensemble docking simulations predicted the ADP binding site of ANT1 to be a pocket of positively charged residues, including lysine 23. Calculated ADP–ANT1 binding affinities were physiologically relevant and predicted substantial reductions in affinity upon acetylation of lysine 23. Insertion of these derived binding affinities as parameters into a complete mathematical description of ANT1 kinetics predicted marked reductions in adenine nucleotide flux resulting from acetylation of lysine 23. Therefore, acetylation of ANT1 could have dramatic physiological effects on ADP–ATP exchange. Dysregulation of acetylation of mitochondrial proteins such as ANT1 therefore could be related to changes in mitochondrial function that are associated with insulin resistance. American Chemical Society 2014-06-02 2014-06-17 /pmc/articles/PMC4067143/ /pubmed/24884163 http://dx.doi.org/10.1021/bi401651e Text en Copyright © 2014 American Chemical Society Open Access on 06/02/2015
spellingShingle Mielke, Clinton
Lefort, Natalie
McLean, Carrie G.
Cordova, Jeanine M.
Langlais, Paul R.
Bordner, Andrew J.
Te, Jerez A.
Ozkan, S. Banu
Willis, Wayne T.
Mandarino, Lawrence J.
Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation
title Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation
title_full Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation
title_fullStr Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation
title_full_unstemmed Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation
title_short Adenine Nucleotide Translocase Is Acetylated in Vivo in Human Muscle: Modeling Predicts a Decreased ADP Affinity and Altered Control of Oxidative Phosphorylation
title_sort adenine nucleotide translocase is acetylated in vivo in human muscle: modeling predicts a decreased adp affinity and altered control of oxidative phosphorylation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4067143/
https://www.ncbi.nlm.nih.gov/pubmed/24884163
http://dx.doi.org/10.1021/bi401651e
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