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AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration

Accumulating evidence indicates that the APOA1 binding protein (AIBP)—a secreted protein—plays a profound role in lipid metabolism. Interestingly, AIBP also functions as an NAD(P)H-hydrate epimerase to catalyze the interconversion of NAD(P)H hydrate [NAD(P)HX] epimers and is renamed as NAXE. Thus, w...

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Autores principales: Kim, Jun-dae, Zhou, Teng, Zhang, Aijun, Li, Shumin, Gupte, Anisha A., Hamilton, Dale J., Fang, Longhou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9688289/
https://www.ncbi.nlm.nih.gov/pubmed/36429071
http://dx.doi.org/10.3390/cells11223643
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author Kim, Jun-dae
Zhou, Teng
Zhang, Aijun
Li, Shumin
Gupte, Anisha A.
Hamilton, Dale J.
Fang, Longhou
author_facet Kim, Jun-dae
Zhou, Teng
Zhang, Aijun
Li, Shumin
Gupte, Anisha A.
Hamilton, Dale J.
Fang, Longhou
author_sort Kim, Jun-dae
collection PubMed
description Accumulating evidence indicates that the APOA1 binding protein (AIBP)—a secreted protein—plays a profound role in lipid metabolism. Interestingly, AIBP also functions as an NAD(P)H-hydrate epimerase to catalyze the interconversion of NAD(P)H hydrate [NAD(P)HX] epimers and is renamed as NAXE. Thus, we call it NAXE hereafter. We investigated its role in NAD(P)H-involved metabolism in murine cardiomyocytes, focusing on the metabolism of hexose, lipids, and amino acids as well as mitochondrial redox function. Unbiased metabolite profiling of cardiac tissue shows that NAXE knockout markedly upregulates the ketone body 3-hydroxybutyric acid (3-HB) and increases or trends increasing lipid-associated metabolites cholesterol, α-linolenic acid and deoxycholic acid. Paralleling greater ketone levels, ChemRICH analysis of the NAXE-regulated metabolites shows reduced abundance of hexose despite similar glucose levels in control and NAXE-deficient blood. NAXE knockout reduces cardiac lactic acid but has no effect on the content of other NAD(P)H-regulated metabolites, including those associated with glucose metabolism, the pentose phosphate pathway, or Krebs cycle flux. Although NAXE is present in mitochondria, it has no apparent effect on mitochondrial oxidative phosphorylation. Instead, we detected more metabolites that can potentially improve cardiac function (3-HB, adenosine, and α-linolenic acid) in the Naxe(−/−) heart; these mice also perform better in aerobic exercise. Our data reveal a new role of NAXE in cardiac ketone and lipid metabolism.
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spelling pubmed-96882892022-11-25 AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration Kim, Jun-dae Zhou, Teng Zhang, Aijun Li, Shumin Gupte, Anisha A. Hamilton, Dale J. Fang, Longhou Cells Article Accumulating evidence indicates that the APOA1 binding protein (AIBP)—a secreted protein—plays a profound role in lipid metabolism. Interestingly, AIBP also functions as an NAD(P)H-hydrate epimerase to catalyze the interconversion of NAD(P)H hydrate [NAD(P)HX] epimers and is renamed as NAXE. Thus, we call it NAXE hereafter. We investigated its role in NAD(P)H-involved metabolism in murine cardiomyocytes, focusing on the metabolism of hexose, lipids, and amino acids as well as mitochondrial redox function. Unbiased metabolite profiling of cardiac tissue shows that NAXE knockout markedly upregulates the ketone body 3-hydroxybutyric acid (3-HB) and increases or trends increasing lipid-associated metabolites cholesterol, α-linolenic acid and deoxycholic acid. Paralleling greater ketone levels, ChemRICH analysis of the NAXE-regulated metabolites shows reduced abundance of hexose despite similar glucose levels in control and NAXE-deficient blood. NAXE knockout reduces cardiac lactic acid but has no effect on the content of other NAD(P)H-regulated metabolites, including those associated with glucose metabolism, the pentose phosphate pathway, or Krebs cycle flux. Although NAXE is present in mitochondria, it has no apparent effect on mitochondrial oxidative phosphorylation. Instead, we detected more metabolites that can potentially improve cardiac function (3-HB, adenosine, and α-linolenic acid) in the Naxe(−/−) heart; these mice also perform better in aerobic exercise. Our data reveal a new role of NAXE in cardiac ketone and lipid metabolism. MDPI 2022-11-17 /pmc/articles/PMC9688289/ /pubmed/36429071 http://dx.doi.org/10.3390/cells11223643 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kim, Jun-dae
Zhou, Teng
Zhang, Aijun
Li, Shumin
Gupte, Anisha A.
Hamilton, Dale J.
Fang, Longhou
AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration
title AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration
title_full AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration
title_fullStr AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration
title_full_unstemmed AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration
title_short AIBP Regulates Metabolism of Ketone and Lipids but Not Mitochondrial Respiration
title_sort aibp regulates metabolism of ketone and lipids but not mitochondrial respiration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9688289/
https://www.ncbi.nlm.nih.gov/pubmed/36429071
http://dx.doi.org/10.3390/cells11223643
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