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Cullin 3 RING E3 ligase inactivation causes NRF2-dependent NADH reductive stress, hepatic lipodystrophy, and systemic
Lijie Gu1, Yanhong Du1, Jianglei Chen1
1Harold Hamm Diabetes Center, Department of Biochemistry and Physiology, University of Oklahoma Health Sciences Center, Oklahoma City, OK 73104.
Abstract:
Cullin RING E3 ligases (CRL) have emerged as key regulators of disease-modifying pathways and therapeutic targets. Cullin3 (Cul3)-containing CRL (CRL3) has been implicated in regulating hepatic insulin and oxidative stress signaling. However, CRL3 function in liver pathophysiology is poorly defined. Here, we report that hepatocyte Cul3 knockout results in rapid resolution of steatosis in obese mice. However, the remarkable resistance of hepatocyte Cul3 knockout mice to developing steatosis does not lead to overall metabolic improvement but causes systemic metabolic disturbances. Liver transcriptomics analysis identifies that CRL3 inactivation causes persistent activation of the nuclear factor erythroid 2-related factor 2 (NRF2) antioxidant defense pathway, which also reprograms the lipid transcriptional network to prevent TG storage. Furthermore, global metabolomics reveals that NRF2 activation induces numerous NAD+-consuming aldehyde dehydrogenases to increase the cellular NADH/NAD+ ratio, a redox imbalance termed NADH reductive stress that inhibits the glycolysis-citrate-lipogenesis axis in Cul3 knockout livers. As a result, this NRF2-induced cellular lipid storage defect promotes hepatic ceramide accumulation, elevates circulating fatty acids, and worsens systemic insulin resistance in a vicious cycle. Hepatic lipid accumulation is restored, and liver injury and hyperglycemia are attenuated when NRF2 activation and NADH reductive stress are abolished in hepatocyte Cul3/Nrf2 double-knockout mice. The resistance to hepatic steatosis, hyperglycemia, and NADH reductive stress are observed in hepatocyte Keap1 knockout mice with NRF2 activation. In summary, our study defines a critical role of CRL3 in hepatic metabolic regulation and demonstrates that the CRL3 downstream NRF2 overactivation causes hepatic metabolic maladaptation to obesity and insulin resistance.
Insights
Cullin3 (Cul3) E3 ligases regulate liver metabolism. Deleting Cul3 in liver cells prevents fat buildup but causes systemic issues via NRF2 activation, leading to insulin resistance.
Area of Science:
- Hepatology
- Metabolic regulation
- Molecular biology
Background:
- Cullin RING E3 ligases (CRL) are crucial in disease pathways and drug development.
- Cullin3 (Cul3)-containing CRL (CRL3) influences hepatic insulin and oxidative stress signaling.
- The precise role of CRL3 in liver disease remains unclear.
Purpose of the Study:
- To investigate the function of CRL3 in liver pathophysiology.
- To understand the metabolic consequences of CRL3 inactivation in hepatocytes.
- To elucidate the downstream mechanisms linking CRL3 to metabolic dysfunction.
Main Methods:
- Hepatocyte-specific Cul3 knockout mouse models were utilized.
- Liver transcriptomics and global metabolomics were performed.
- NRF2 and Keap1 knockout mice were employed to validate findings.
Main Results:
- Hepatocyte Cul3 knockout rapidly resolved steatosis in obese mice but caused systemic metabolic disturbances.
- CRL3 inactivation led to persistent NRF2 activation, preventing triglyceride storage and reprogramming lipid metabolism.
- Nrf2 activation induced NADH-consuming enzymes, causing NADH reductive stress, inhibiting glycolysis, and worsening insulin resistance.
Conclusions:
- CRL3 plays a critical role in regulating hepatic metabolism.
- Downstream NRF2 overactivation due to CRL3 loss causes hepatic metabolic maladaptation.
- Targeting the CRL3-NRF2 axis may offer therapeutic strategies for obesity and insulin resistance.
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