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Published on: October 23, 2018
mTORC1 activation is not sufficient to suppress hepatic PPARα signaling or ketogenesis
Ebru S Selen1, Michael J Wolfgang2
1Department of Biological Chemistry, The Johns Hopkins University School of Medicine, Baltimore, Maryland, USA.
Abstract:
The mechanistic target of rapamycin (mTOR) is often referred to as a master regulator of the cellular metabolism that can integrate the growth factor and nutrient signaling. Fasting suppresses hepatic mTORC1 activity via the activity of the tuberous sclerosis complex (TSC), a negative regulator of mTORC1, to suppress anabolic metabolism. The loss of TSC1 in the liver locks the liver in a constitutively anabolic state even during fasting, which was suggested to regulate peroxisome proliferator-activated receptor alpha (PPARα) signaling and ketogenesis, but the molecular determinants of this regulation are unknown. Here, we examined if the activation of the mTORC1 complex in mice by the liver-specific deletion of TSC1 (TSC1L-/-) is sufficient to suppress PPARα signaling and therefore ketogenesis in the fasted state. We found that the activation of mTORC1 in the fasted state is not sufficient to repress PPARα-responsive genes or ketogenesis. Furthermore, we examined whether the activation of the anabolic program mediated by mTORC1 complex activation in the fasted state could suppress the robust catabolic programming and enhanced PPARα transcriptional response of mice with a liver-specific defect in mitochondrial long-chain fatty acid oxidation using carnitine palmitoyltransferase 2 (Cpt2L-/-) mice. We generated Cpt2L-/-; Tsc1L-/- double-KO mice and showed that the activation of mTORC1 by deletion of TSC1 could not suppress the catabolic PPARα-mediated phenotype of Cpt2L-/- mice. These data demonstrate that the activation of mTORC1 by the deletion of TSC1 is not sufficient to suppress a PPARα transcriptional program or ketogenesis after fasting.
Insights
Activating mTORC1 in the liver during fasting does not suppress PPARα signaling or ketogenesis. Even when combined with defects in fatty acid oxidation, mTORC1 activation fails to alter the catabolic PPARα phenotype.
Area of Science:
- Cellular Metabolism
- Molecular Biology
- Endocrinology
Background:
- The mechanistic target of rapamycin (mTOR) integrates nutrient and growth factor signals to regulate cellular metabolism.
- Fasting normally suppresses hepatic mTOR complex 1 (mTORC1) activity, inhibiting anabolic processes.
- Loss of tuberous sclerosis complex 1 (TSC1) in the liver leads to constitutive anabolism, potentially affecting peroxisome proliferator-activated receptor alpha (PPARα) signaling and ketogenesis.
Purpose of the Study:
- To investigate if activating mTORC1 in the liver by deleting TSC1 (TSC1L-/-) is sufficient to suppress PPARα signaling and ketogenesis during fasting.
- To determine if mTORC1 activation can counteract the catabolic PPARα phenotype in mice with impaired fatty acid oxidation (Cpt2L-/-).
Main Methods:
- Liver-specific deletion of TSC1 in mice (TSC1L-/-) to activate mTORC1.
- Generation of double knockout mice lacking both TSC1 in the liver and carnitine palmitoyltransferase 2 (Cpt2L-/-).
- Analysis of PPARα-responsive gene expression and ketogenesis in fasted mice.
Main Results:
- Hepatic mTORC1 activation in fasted TSC1L-/- mice did not repress PPARα-responsive genes or ketogenesis.
- In fasted Cpt2L-/-; Tsc1L-/- double KO mice, mTORC1 activation did not suppress the catabolic PPARα-mediated phenotype.
Conclusions:
- Activation of hepatic mTORC1 via TSC1 deletion is insufficient to suppress PPARα transcriptional programs or ketogenesis during fasting.
- mTORC1 activation cannot overcome the established catabolic state driven by PPARα in the context of impaired fatty acid oxidation.
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