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Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart

General control of amino acid synthesis 5-like 1 (GCN5L1) was previously identified as a key regulator of protein lysine acetylation in mitochondria. Subsequent studies demonstrated that GCN5L1 regulates the acetylation status and activity of mitochondrial fuel substrate metabolism enzymes. However,...

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Autores principales: Zhang, Manling, Feng, Ning, Peng, Zishan, Thapa, Dharendra, Stoner, Michael W., Manning, Janet R., McTiernan, Charles F., Yang, Xue, Jurczak, Michael J., Guimaraes, Danielle, Rao, Krithika, Shiva, Sruti, Kaufman, Brett A., Sack, Michael N., Scott, Iain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10250906/
https://www.ncbi.nlm.nih.gov/pubmed/37305705
http://dx.doi.org/10.1016/j.isci.2023.106942
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author Zhang, Manling
Feng, Ning
Peng, Zishan
Thapa, Dharendra
Stoner, Michael W.
Manning, Janet R.
McTiernan, Charles F.
Yang, Xue
Jurczak, Michael J.
Guimaraes, Danielle
Rao, Krithika
Shiva, Sruti
Kaufman, Brett A.
Sack, Michael N.
Scott, Iain
author_facet Zhang, Manling
Feng, Ning
Peng, Zishan
Thapa, Dharendra
Stoner, Michael W.
Manning, Janet R.
McTiernan, Charles F.
Yang, Xue
Jurczak, Michael J.
Guimaraes, Danielle
Rao, Krithika
Shiva, Sruti
Kaufman, Brett A.
Sack, Michael N.
Scott, Iain
author_sort Zhang, Manling
collection PubMed
description General control of amino acid synthesis 5-like 1 (GCN5L1) was previously identified as a key regulator of protein lysine acetylation in mitochondria. Subsequent studies demonstrated that GCN5L1 regulates the acetylation status and activity of mitochondrial fuel substrate metabolism enzymes. However, the role of GCN5L1 in response to chronic hemodynamic stress is largely unknown. Here, we show that cardiomyocyte-specific GCN5L1 knockout mice (cGCN5L1 KO) display exacerbated heart failure progression following transaortic constriction (TAC). Mitochondrial DNA and protein levels were decreased in cGCN5L1 KO hearts after TAC, and isolated neonatal cardiomyocytes with reduced GCN5L1 expression had lower bioenergetic output in response to hypertrophic stress. Loss of GCN5L1 expression led to a decrease in the acetylation status of mitochondrial transcription factor A (TFAM) after TAC in vivo, which was linked to a reduction in mtDNA levels in vitro. Together, these data suggest that GCN5L1 may protect from hemodynamic stress by maintaining mitochondrial bioenergetic output.
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spelling pubmed-102509062023-06-10 Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart Zhang, Manling Feng, Ning Peng, Zishan Thapa, Dharendra Stoner, Michael W. Manning, Janet R. McTiernan, Charles F. Yang, Xue Jurczak, Michael J. Guimaraes, Danielle Rao, Krithika Shiva, Sruti Kaufman, Brett A. Sack, Michael N. Scott, Iain iScience Article General control of amino acid synthesis 5-like 1 (GCN5L1) was previously identified as a key regulator of protein lysine acetylation in mitochondria. Subsequent studies demonstrated that GCN5L1 regulates the acetylation status and activity of mitochondrial fuel substrate metabolism enzymes. However, the role of GCN5L1 in response to chronic hemodynamic stress is largely unknown. Here, we show that cardiomyocyte-specific GCN5L1 knockout mice (cGCN5L1 KO) display exacerbated heart failure progression following transaortic constriction (TAC). Mitochondrial DNA and protein levels were decreased in cGCN5L1 KO hearts after TAC, and isolated neonatal cardiomyocytes with reduced GCN5L1 expression had lower bioenergetic output in response to hypertrophic stress. Loss of GCN5L1 expression led to a decrease in the acetylation status of mitochondrial transcription factor A (TFAM) after TAC in vivo, which was linked to a reduction in mtDNA levels in vitro. Together, these data suggest that GCN5L1 may protect from hemodynamic stress by maintaining mitochondrial bioenergetic output. Elsevier 2023-05-23 /pmc/articles/PMC10250906/ /pubmed/37305705 http://dx.doi.org/10.1016/j.isci.2023.106942 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Zhang, Manling
Feng, Ning
Peng, Zishan
Thapa, Dharendra
Stoner, Michael W.
Manning, Janet R.
McTiernan, Charles F.
Yang, Xue
Jurczak, Michael J.
Guimaraes, Danielle
Rao, Krithika
Shiva, Sruti
Kaufman, Brett A.
Sack, Michael N.
Scott, Iain
Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart
title Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart
title_full Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart
title_fullStr Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart
title_full_unstemmed Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart
title_short Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart
title_sort reduced acetylation of tfam promotes bioenergetic dysfunction in the failing heart
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10250906/
https://www.ncbi.nlm.nih.gov/pubmed/37305705
http://dx.doi.org/10.1016/j.isci.2023.106942
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