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Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice

Molecular clocks and daily feeding cycles support metabolism in peripheral tissues. Although the roles of local clocks and feeding are well defined at the transcriptional level, their impact on governing protein abundance in peripheral tissues is unclear. Here, we determine the relative contribution...

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Autores principales: Smith, Jacob G., Molendijk, Jeffrey, Blazev, Ronnie, Chen, Wan Hsi, Zhang, Qing, Litwin, Christopher, Zinna, Valentina M., Welz, Patrick-Simon, Benitah, Salvador Aznar, Greco, Carolina M., Sassone-Corsi, Paolo, Muñoz-Cánoves, Pura, Parker, Benjamin L., Koronowski, Kevin B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10651687/
https://www.ncbi.nlm.nih.gov/pubmed/37793502
http://dx.doi.org/10.1016/j.mcpro.2023.100655
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author Smith, Jacob G.
Molendijk, Jeffrey
Blazev, Ronnie
Chen, Wan Hsi
Zhang, Qing
Litwin, Christopher
Zinna, Valentina M.
Welz, Patrick-Simon
Benitah, Salvador Aznar
Greco, Carolina M.
Sassone-Corsi, Paolo
Muñoz-Cánoves, Pura
Parker, Benjamin L.
Koronowski, Kevin B.
author_facet Smith, Jacob G.
Molendijk, Jeffrey
Blazev, Ronnie
Chen, Wan Hsi
Zhang, Qing
Litwin, Christopher
Zinna, Valentina M.
Welz, Patrick-Simon
Benitah, Salvador Aznar
Greco, Carolina M.
Sassone-Corsi, Paolo
Muñoz-Cánoves, Pura
Parker, Benjamin L.
Koronowski, Kevin B.
author_sort Smith, Jacob G.
collection PubMed
description Molecular clocks and daily feeding cycles support metabolism in peripheral tissues. Although the roles of local clocks and feeding are well defined at the transcriptional level, their impact on governing protein abundance in peripheral tissues is unclear. Here, we determine the relative contributions of local molecular clocks and daily feeding cycles on liver and muscle proteomes during the active phase in mice. LC–MS/MS was performed on liver and gastrocnemius muscle harvested 4 h into the dark phase from WT, Bmal1 KO, and dual liver- and muscle-Bmal1–rescued mice under either ad libitum feeding or time-restricted feeding during the dark phase. Feeding-fasting cycles had only minimal effects on levels of liver proteins and few, if any, on the muscle proteome. In contrast, Bmal1 KO altered the abundance of 674 proteins in liver and 80 proteins in muscle. Local rescue of liver and muscle Bmal1 restored ∼50% of proteins in liver and ∼25% in muscle. These included proteins involved in fatty acid oxidation in liver and carbohydrate metabolism in muscle. For liver, proteins involved in de novo lipogenesis were largely dependent on Bmal1 function in other tissues (i.e., the wider clock system). Proteins regulated by BMAL1 in liver and muscle were enriched for secreted proteins. We found that the abundance of fibroblast growth factor 1, a liver secreted protein, requires BMAL1 and that autocrine fibroblast growth factor 1 signaling modulates mitochondrial respiration in hepatocytes. In liver and muscle, BMAL1 is a more potent regulator of dark phase proteomes than daily feeding cycles, highlighting the need to assess protein levels in addition to mRNA when investigating clock mechanisms. The proteome is more extensively regulated by BMAL1 in liver than in muscle, and many metabolic pathways in peripheral tissues are reliant on the function of the clock system as a whole.
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spelling pubmed-106516872023-10-02 Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice Smith, Jacob G. Molendijk, Jeffrey Blazev, Ronnie Chen, Wan Hsi Zhang, Qing Litwin, Christopher Zinna, Valentina M. Welz, Patrick-Simon Benitah, Salvador Aznar Greco, Carolina M. Sassone-Corsi, Paolo Muñoz-Cánoves, Pura Parker, Benjamin L. Koronowski, Kevin B. Mol Cell Proteomics Research Molecular clocks and daily feeding cycles support metabolism in peripheral tissues. Although the roles of local clocks and feeding are well defined at the transcriptional level, their impact on governing protein abundance in peripheral tissues is unclear. Here, we determine the relative contributions of local molecular clocks and daily feeding cycles on liver and muscle proteomes during the active phase in mice. LC–MS/MS was performed on liver and gastrocnemius muscle harvested 4 h into the dark phase from WT, Bmal1 KO, and dual liver- and muscle-Bmal1–rescued mice under either ad libitum feeding or time-restricted feeding during the dark phase. Feeding-fasting cycles had only minimal effects on levels of liver proteins and few, if any, on the muscle proteome. In contrast, Bmal1 KO altered the abundance of 674 proteins in liver and 80 proteins in muscle. Local rescue of liver and muscle Bmal1 restored ∼50% of proteins in liver and ∼25% in muscle. These included proteins involved in fatty acid oxidation in liver and carbohydrate metabolism in muscle. For liver, proteins involved in de novo lipogenesis were largely dependent on Bmal1 function in other tissues (i.e., the wider clock system). Proteins regulated by BMAL1 in liver and muscle were enriched for secreted proteins. We found that the abundance of fibroblast growth factor 1, a liver secreted protein, requires BMAL1 and that autocrine fibroblast growth factor 1 signaling modulates mitochondrial respiration in hepatocytes. In liver and muscle, BMAL1 is a more potent regulator of dark phase proteomes than daily feeding cycles, highlighting the need to assess protein levels in addition to mRNA when investigating clock mechanisms. The proteome is more extensively regulated by BMAL1 in liver than in muscle, and many metabolic pathways in peripheral tissues are reliant on the function of the clock system as a whole. American Society for Biochemistry and Molecular Biology 2023-10-02 /pmc/articles/PMC10651687/ /pubmed/37793502 http://dx.doi.org/10.1016/j.mcpro.2023.100655 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research
Smith, Jacob G.
Molendijk, Jeffrey
Blazev, Ronnie
Chen, Wan Hsi
Zhang, Qing
Litwin, Christopher
Zinna, Valentina M.
Welz, Patrick-Simon
Benitah, Salvador Aznar
Greco, Carolina M.
Sassone-Corsi, Paolo
Muñoz-Cánoves, Pura
Parker, Benjamin L.
Koronowski, Kevin B.
Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice
title Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice
title_full Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice
title_fullStr Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice
title_full_unstemmed Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice
title_short Impact of Bmal1 Rescue and Time-Restricted Feeding on Liver and Muscle Proteomes During the Active Phase in Mice
title_sort impact of bmal1 rescue and time-restricted feeding on liver and muscle proteomes during the active phase in mice
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10651687/
https://www.ncbi.nlm.nih.gov/pubmed/37793502
http://dx.doi.org/10.1016/j.mcpro.2023.100655
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