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Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation

The coordination of cellular biological processes is regulated in part via metabolic enzymes acting to match cellular metabolism to current conditions. The acetate activating enzyme, acyl-coenzyme A synthetase short-chain family member 2 (Acss2), has long been considered to have a predominantly lipo...

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Autores principales: Vasudevan, Narayanan Puthillathu, Soni, Dharmendra K., Moffett, John R., Krishnan, Jishnu K. S., Appu, Abhilash P., Ghoshal, Sarani, Arun, Peethambaran, Denu, John M., Flagg, Thomas P., Biswas, Roopa, Namboodiri, Aryan M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9964712/
https://www.ncbi.nlm.nih.gov/pubmed/36835088
http://dx.doi.org/10.3390/ijms24043673
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author Vasudevan, Narayanan Puthillathu
Soni, Dharmendra K.
Moffett, John R.
Krishnan, Jishnu K. S.
Appu, Abhilash P.
Ghoshal, Sarani
Arun, Peethambaran
Denu, John M.
Flagg, Thomas P.
Biswas, Roopa
Namboodiri, Aryan M.
author_facet Vasudevan, Narayanan Puthillathu
Soni, Dharmendra K.
Moffett, John R.
Krishnan, Jishnu K. S.
Appu, Abhilash P.
Ghoshal, Sarani
Arun, Peethambaran
Denu, John M.
Flagg, Thomas P.
Biswas, Roopa
Namboodiri, Aryan M.
author_sort Vasudevan, Narayanan Puthillathu
collection PubMed
description The coordination of cellular biological processes is regulated in part via metabolic enzymes acting to match cellular metabolism to current conditions. The acetate activating enzyme, acyl-coenzyme A synthetase short-chain family member 2 (Acss2), has long been considered to have a predominantly lipogenic function. More recent evidence suggests that this enzyme has regulatory functions in addition to its role in providing acetyl-CoA for lipid synthesis. We used Acss2 knockout mice (Acss2(−/−)) to further investigate the roles this enzyme plays in three physiologically distinct organ systems that make extensive use of lipid synthesis and storage, including the liver, brain, and adipose tissue. We examined the resulting transcriptomic changes resulting from Acss2 deletion and assessed these changes in relation to fatty acid constitution. We find that loss of Acss2 leads to dysregulation of numerous canonical signaling pathways, upstream transcriptional regulatory molecules, cellular processes, and biological functions, which were distinct in the liver, brain, and mesenteric adipose tissues. The detected organ-specific transcriptional regulatory patterns reflect the complementary functional roles of these organ systems within the context of systemic physiology. While alterations in transcriptional states were evident, the loss of Acss2 resulted in few changes in fatty acid constitution in all three organ systems. Overall, we demonstrate that Acss2 loss institutes organ-specific transcriptional regulatory patterns reflecting the complementary functional roles of these organ systems. Collectively, these findings provide further confirmation that Acss2 regulates key transcription factors and pathways under well-fed, non-stressed conditions and acts as a transcriptional regulatory enzyme.
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spelling pubmed-99647122023-02-26 Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation Vasudevan, Narayanan Puthillathu Soni, Dharmendra K. Moffett, John R. Krishnan, Jishnu K. S. Appu, Abhilash P. Ghoshal, Sarani Arun, Peethambaran Denu, John M. Flagg, Thomas P. Biswas, Roopa Namboodiri, Aryan M. Int J Mol Sci Article The coordination of cellular biological processes is regulated in part via metabolic enzymes acting to match cellular metabolism to current conditions. The acetate activating enzyme, acyl-coenzyme A synthetase short-chain family member 2 (Acss2), has long been considered to have a predominantly lipogenic function. More recent evidence suggests that this enzyme has regulatory functions in addition to its role in providing acetyl-CoA for lipid synthesis. We used Acss2 knockout mice (Acss2(−/−)) to further investigate the roles this enzyme plays in three physiologically distinct organ systems that make extensive use of lipid synthesis and storage, including the liver, brain, and adipose tissue. We examined the resulting transcriptomic changes resulting from Acss2 deletion and assessed these changes in relation to fatty acid constitution. We find that loss of Acss2 leads to dysregulation of numerous canonical signaling pathways, upstream transcriptional regulatory molecules, cellular processes, and biological functions, which were distinct in the liver, brain, and mesenteric adipose tissues. The detected organ-specific transcriptional regulatory patterns reflect the complementary functional roles of these organ systems within the context of systemic physiology. While alterations in transcriptional states were evident, the loss of Acss2 resulted in few changes in fatty acid constitution in all three organ systems. Overall, we demonstrate that Acss2 loss institutes organ-specific transcriptional regulatory patterns reflecting the complementary functional roles of these organ systems. Collectively, these findings provide further confirmation that Acss2 regulates key transcription factors and pathways under well-fed, non-stressed conditions and acts as a transcriptional regulatory enzyme. MDPI 2023-02-12 /pmc/articles/PMC9964712/ /pubmed/36835088 http://dx.doi.org/10.3390/ijms24043673 Text en © 2023 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
Vasudevan, Narayanan Puthillathu
Soni, Dharmendra K.
Moffett, John R.
Krishnan, Jishnu K. S.
Appu, Abhilash P.
Ghoshal, Sarani
Arun, Peethambaran
Denu, John M.
Flagg, Thomas P.
Biswas, Roopa
Namboodiri, Aryan M.
Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation
title Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation
title_full Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation
title_fullStr Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation
title_full_unstemmed Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation
title_short Acss2 Deletion Reveals Functional Versatility via Tissue-Specific Roles in Transcriptional Regulation
title_sort acss2 deletion reveals functional versatility via tissue-specific roles in transcriptional regulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9964712/
https://www.ncbi.nlm.nih.gov/pubmed/36835088
http://dx.doi.org/10.3390/ijms24043673
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