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1.
Mol Metab ; 86: 101967, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38876267

RESUMO

OBJECTIVE: In response to bacterial inflammation, anorexia of acute illness is protective and is associated with the induction of fasting metabolic programs such as ketogenesis. Forced feeding during the anorectic period induced by bacterial inflammation is associated with suppressed ketogenesis and increased mortality. As ketogenesis is considered essential in fasting adaptation, we sought to determine the role of ketogenesis in illness-induced anorexia. METHODS: A mouse model of inducible hepatic specific deletion of the rate limiting enzyme for ketogenesis (HMG-CoA synthase 2, Hmgcs2) was used to investigate the role of ketogenesis in endotoxemia, a model of bacterial inflammation, and in prolonged starvation. RESULTS: Mice deficient of hepatic Hmgcs2 failed to develop ketosis during endotoxemia and during prolonged fasting. Surprisingly, hepatic HMGCS2 deficiency and the lack of ketosis did not affect survival, glycemia, or body temperature in response to endotoxemia. Mice with hepatic ketogenic deficiency also did not exhibit any defects in starvation adaptation and were able to maintain blood glucose, body temperature, and lean mass compared to littermate wild-type controls. Mice with hepatic HMGCS2 deficiency exhibited higher levels of plasma acetate levels in response to fasting. CONCLUSIONS: Circulating hepatic-derived ketones do not provide protection against endotoxemia, suggesting that alternative mechanisms drive the increased mortality from forced feeding during illness-induced anorexia. Hepatic ketones are also dispensable for surviving prolonged starvation in the absence of inflammation. Our study challenges the notion that hepatic ketogenesis is required to maintain blood glucose and preserve lean mass during starvation, raising the possibility of extrahepatic ketogenesis and use of alternative fuels as potential means of metabolic compensation.


Assuntos
Hidroximetilglutaril-CoA Sintase , Cetose , Fígado , Inanição , Animais , Camundongos , Fígado/metabolismo , Inanição/metabolismo , Hidroximetilglutaril-CoA Sintase/metabolismo , Hidroximetilglutaril-CoA Sintase/genética , Masculino , Cetose/metabolismo , Endotoxemia/metabolismo , Adaptação Fisiológica , Corpos Cetônicos/metabolismo , Glicemia/metabolismo , Camundongos Endogâmicos C57BL , Jejum/metabolismo , Camundongos Knockout , Anorexia/metabolismo
2.
Cell Metab ; 36(5): 1088-1104.e12, 2024 May 07.
Artigo em Inglês | MEDLINE | ID: mdl-38447582

RESUMO

Acetyl-CoA carboxylase (ACC) promotes prandial liver metabolism by producing malonyl-CoA, a substrate for de novo lipogenesis and an inhibitor of CPT-1-mediated fat oxidation. We report that inhibition of ACC also produces unexpected secondary effects on metabolism. Liver-specific double ACC1/2 knockout (LDKO) or pharmacologic inhibition of ACC increased anaplerosis, tricarboxylic acid (TCA) cycle intermediates, and gluconeogenesis by activating hepatic CPT-1 and pyruvate carboxylase flux in the fed state. Fasting should have marginalized the role of ACC, but LDKO mice maintained elevated TCA cycle intermediates and preserved glycemia during fasting. These effects were accompanied by a compensatory induction of proteolysis and increased amino acid supply for gluconeogenesis, which was offset by increased protein synthesis during feeding. Such adaptations may be related to Nrf2 activity, which was induced by ACC inhibition and correlated with fasting amino acids. The findings reveal unexpected roles for malonyl-CoA synthesis in liver and provide insight into the broader effects of pharmacologic ACC inhibition.


Assuntos
Acetil-CoA Carboxilase , Aminoácidos , Gluconeogênese , Fígado , Malonil Coenzima A , Camundongos Knockout , Oxirredução , Animais , Malonil Coenzima A/metabolismo , Fígado/metabolismo , Acetil-CoA Carboxilase/metabolismo , Camundongos , Aminoácidos/metabolismo , Masculino , Piruvato Carboxilase/metabolismo , Ciclo do Ácido Cítrico , Ácido Pirúvico/metabolismo , Camundongos Endogâmicos C57BL , Jejum/metabolismo , Carnitina O-Palmitoiltransferase/metabolismo
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