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Decreased carboxylesterases expression and hydrolytic activity in type 2 diabetic mice through Akt/mTOR/HIF-1α/Stra13
Ruini Chen1, Yuwen Wang, Rui Ning
1a Department of Pharmacology , Nanjing Medical University , Nanjing , China.
Abstract:
1. This study investigated the alteration of carboxylesterases in type 2 diabetes. We found that the carboxylesterase 1d (Ces1d) and carboxylesterase 1e (Ces1e) expression and the capacity of hydrolytic activity of liver and intestine decreased, whereas the Akt/mTOR/HIF-1α/ Stra13 (DEC1) signaling was activated in T2D mice. Consistently, high insulin could give rise to the same results in the high-glucose DMEM condition, which mimicked T2D, in primary mouse hepatocytes. 2. Perifosine or rapamycin almost abolished the decrease of the Ces1d and Ces1e expression and the hydrolytic activity induced by the insulin in the primary mouse hepatocytes. 3. The responsiveness of human hepatoma (HepG2) cells to high insulin in high-glucose condition was similar to that of primary mouse hepatocytes in terms of the altered expression of carboxylesterases. 4. The knockdown of HIF-1α or DEC1 with shRNA construct abrogated the decrease of the CES1 and CES2 expression induced by the insulin in high glucose condition in HepG2 cells. 5. Taken together, the decreased carboxylesterases expression and hydrolytic activity in T2D mice are through the Akt/mTOR/HIF-1α/Stra13 (DEC1) pathway.
Insights
Type 2 diabetes (T2D) reduces carboxylesterase expression and activity via the Akt/mTOR/HIF-1α/DEC1 pathway. This pathway activation in liver and intestine impacts T2D progression.
Area of Science:
- Biochemistry
- Metabolic Diseases
- Molecular Biology
Background:
- Carboxylesterases (CES) play crucial roles in drug and xenobiotic metabolism.
- Alterations in CES activity are implicated in various metabolic disorders, including type 2 diabetes (T2D).
- The molecular mechanisms underlying CES dysregulation in T2D remain incompletely understood.
Purpose of the Study:
- To investigate the impact of type 2 diabetes on carboxylesterase expression and activity.
- To elucidate the signaling pathways involved in CES alterations in T2D.
- To explore potential therapeutic targets for managing CES dysfunction in T2D.
Main Methods:
- Comparative analysis of CES1d and CES1e expression and hydrolytic activity in T2D mice versus control groups.
- In vitro studies using primary mouse hepatocytes and human hepatoma (HepG2) cells exposed to high glucose and insulin conditions mimicking T2D.
- Pharmacological inhibition of Akt/mTOR pathway (Perifosine, Rapamycin) and genetic knockdown of HIF-1α and DEC1 (Stra13) using shRNA constructs.
Main Results:
- T2D mice exhibited decreased CES1d and CES1e expression and hydrolytic activity in the liver and intestine.
- High insulin and glucose conditions in vitro replicated the reduced CES expression and activity observed in T2D mice.
- Inhibition of the Akt/mTOR pathway and knockdown of HIF-1α or DEC1 significantly restored CES expression and activity.
- HepG2 cells showed similar responsiveness to high insulin/glucose conditions as primary hepatocytes.
Conclusions:
- The Akt/mTOR/HIF-1α/DEC1 signaling pathway is a key mediator of decreased carboxylesterase expression and hydrolytic activity in type 2 diabetes.
- Targeting this pathway may offer a therapeutic strategy to normalize CES function in T2D.
- Understanding these molecular mechanisms provides insights into the metabolic dysregulation associated with T2D.
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