Hepatic levels of S-adenosylmethionine regulate the adaptive response to fasting
Capelo-Diz, A.; Lachiondo-Ortega, S.; Fernández-Ramos, D.; Cañas-Martín, J.; Goikoetxea-Usandizaga, N.; Serrano-Maciá, M.; González-Rellan, M.J.; Mosca, L.; Blazquez-Vicens, J.; Tinahones-Ruano, A.; Fondevila, M.F.; Buyan, M.; Delgado, T.C.; Gutierrez de Juan, V.; Ayuso-García, P.; Sánchez-Rueda, A.; Velasco-Avilés, S.; Fernández-Susavila, H.; Riobello-Suárez, C.; Dziechciarz, B.; Montiel-Duarte, C.; Lopitz-Otsoa, F.; Bizkarguenaga, M.; Bilbao-García, J.; Bernardo-Seisdedos, G.; Senra, A.; Soriano-Navarro, M.; Millet, O.; Díaz Lagares, Ángel; Crujeiras Martínez, Ana Belén; Bao Caamaño, Aida; Cabrera, D.; van Liempd, S.; Tamayo-Carro, M.; Borzacchiello, L.; Gomez-Santos, B.; Buqué, X.; Sáenz de Urturi, D.; González-Romero, F.; Simon, J.; Rodríguez-Agudo, R.; Ruiz, A.; Matute, C.; Beiroa Tarrío, Daniel; Falcon-Perez, J.M.; Aspichueta, P.; Rodríguez-Cuesta, J.; Porcelli, M.; Pajares, M.A.; Ameneiro, C.; Fidalgo Pérez, Miguel Ángel; Aransay, A.M.; Lama-Díaz, T.; Blanco, M.G.; López Pérez, Miguel A.; Villa-Bellosta, R.; Müller, T.D.; Nogueiras Pozo, Rubén; Woodhoo, A.; Martínez-Chantar, M.L.; Varela-Rey, M.

Identifiers
Identifiers
Date issued
2023Journal title
Cell Metabolism
Type of content
Artigo
MeSH
Mice | Animals | S-Adenosylmethionine | Liver | Liver Neoplasms | Fasting | Adenosine Triphosphate | Methionine Adenosyltransferase | Phosphatidylethanolamine N-MethyltransferaseAbstract
There has been an intense focus to uncover the molecular mechanisms by which fasting triggers the adaptive cellular responses in the major organs of the body. Here, we show that in mice, hepatic S-adenosylmethionine (SAMe)-the principal methyl donor-acts as a metabolic sensor of nutrition to fine-tune the catabolic-fasting response by modulating phosphatidylethanolamine N-methyltransferase (PEMT) activity, endoplasmic reticulum-mitochondria contacts, ?-oxidation, and ATP production in the liver, together with FGF21-mediated lipolysis and thermogenesis in adipose tissues. Notably, we show that glucagon induces the expression of the hepatic SAMe-synthesizing enzyme methionine adenosyltransferase ?1 (MAT1A), which translocates to mitochondria-associated membranes. This leads to the production of this metabolite at these sites, which acts as a brake to prevent excessive ?-oxidation and mitochondrial ATP synthesis and thereby endoplasmic reticulum stress and liver injury. This work provides important insights into the previously undescribed function of SAMe as a new arm of the metabolic adaptation to fasting.
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