A fasting inducible switch modulates gluconeogenesis via activator/coactivator exchange
Open Access
- 5 October 2008
- journal article
- research article
- Published by Springer Nature in Nature
- Vol. 456 (7219), 269-273
- https://doi.org/10.1038/nature07349
Abstract
A fasting-inducible switch, consisting of the histone acetyl transferase p300 and the nutrient-sensing NAD+-dependent deacetylase SIRT1, is shown to maintain energy balance during fasting by promoting the sequential induction of the transcription factors TORC2 and FOXO1. This illustrates how the exchange of two gluconeogenic regulators during fasting maintains energy balance. During early fasting, increases in skeletal muscle proteolysis liberate free amino acids for hepatic gluconeogenesis in response to pancreatic glucagon. Hepatic glucose output diminishes during the late protein-sparing phase of fasting, when ketone body production by the liver supplies compensatory fuel for glucose-dependent tissues1,2,3,4. Glucagon stimulates the gluconeogenic program by triggering the dephosphorylation and nuclear translocation of the CREB regulated transcription coactivator 2 (CRTC2; also known as TORC2), while parallel decreases in insulin signalling augment gluconeogenic gene expression through the dephosphorylation and nuclear shuttling of forkhead box O1 (FOXO1)5,6,7. Here we show that a fasting-inducible switch, consisting of the histone acetyltransferase p300 and the nutrient-sensing deacetylase sirtuin 1 (SIRT1), maintains energy balance in mice through the sequential induction of CRTC2 and FOXO1. After glucagon induction, CRTC2 stimulated gluconeogenic gene expression by an association with p300, which we show here is also activated by dephosphorylation at Ser 89 during fasting. In turn, p300 increased hepatic CRTC2 activity by acetylating it at Lys 628, a site that also targets CRTC2 for degradation after its ubiquitination by the E3 ligase constitutive photomorphogenic protein (COP1)8. Glucagon effects were attenuated during late fasting, when CRTC2 was downregulated owing to SIRT1-mediated deacetylation and when FOXO1 supported expression of the gluconeogenic program. Disrupting SIRT1 activity, by liver-specific knockout of the Sirt1 gene or by administration of a SIRT1 antagonist, increased CRTC2 activity and glucose output, whereas exposure to SIRT1 agonists reduced them. In view of the reciprocal activation of FOXO1 and its coactivator peroxisome proliferator-activated receptor-γ coactivator-1α (PGC-1α, encoded by Ppargc1a) by SIRT1 activators9,10,11,12, our results illustrate how the exchange of two gluconeogenic regulators during fasting maintains energy balance.Keywords
This publication has 33 references indexed in Scilit:
- Small molecule activators of SIRT1 as therapeutics for the treatment of type 2 diabetesNature, 2007
- Insulin modulates gluconeogenesis by inhibition of the coactivator TORC2Nature, 2007
- Cooperative interactions between CBP and TORC2 confer selectivity to CREB target gene expressionThe EMBO Journal, 2007
- Wnt/β-catenin/CBP signaling maintains long-term murine embryonic stem cell pluripotencyProceedings of the National Academy of Sciences, 2007
- Resveratrol improves health and survival of mice on a high-calorie dietNature, 2006
- Fuel Metabolism in StarvationAnnual Review of Nutrition, 2006
- FoxO-dependent and -independent mechanisms mediate SirT1 effects on IGFBP-1 gene expressionBiochemical and Biophysical Research Communications, 2005
- The CREB coactivator TORC2 is a key regulator of fasting glucose metabolismNature, 2005
- Regulating the RegulatorsCell, 2003
- Differential Regulation of Endogenous Glucose-6-Phosphatase and Phosphoenolpyruvate Carboxykinase Gene Expression by the Forkhead Transcription Factor FKHR in H4IIE-Hepatoma CellsBiochemical and Biophysical Research Communications, 2001