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Inactivation of arf-bp1 induces p53 activation and diabetic phenotypes in mice
Ning Kon1, Jiayun Zhong, Li Qiang
1Institute for Cancer Genetics, Columbia University College of Physicians and Surgeons, New York, New York 10032, USA.
Abstract:
It is well accepted that the Mdm2 ubiquitin ligase acts as a major factor in controlling p53 stability and activity in vivo. Although several E3 ligases have been reported to be involved in Mdm2-independent p53 degradation, the roles of these ligases in p53 regulation in vivo remain largely unknown. To elucidate the physiological role of the ubiquitin ligase ARF-BP1, we generated arf-bp1 mutant mice. We found that inactivation of arf-bp1 during embryonic development in mice resulted in p53 activation and embryonic lethality, but the mice with arf-bp1 deletion specifically in the pancreatic β-cells (arf-bp1(FL/Y)/RIP-cre) were viable and displayed no obvious abnormality after birth. Interestingly, these mice showed dramatic loss of β-cells as mice aged, and >50% of these mice died of severe diabetic symptoms before reaching 1 year of age. Notably, the diabetic phenotype of these mice was largely reversed by concomitant deletion of p53, and the life span of the mice was significantly extended (p53(LFL/FL)/arf-bp1(FL/Y)/RIP-cre). These findings underscore an important role of ARF-BP1 in maintaining β-cell homeostasis in aging mice and reveal that the stability of p53 is critically regulated by ARF-BP1 in vivo.
Insights
The ubiquitin ligase ARF-BP1 is crucial for maintaining pancreatic beta-cell health in aging mice. Its absence leads to p53 activation, beta-cell loss, and diabetes, highlighting ARF-BP1
Area of Science:
- Cellular and Molecular Biology
- Endocrinology
- Genetics and Genomics
Background:
- Mdm2 ubiquitin ligase is a key regulator of p53 stability and activity.
- The in vivo roles of other E3 ligases in p53 degradation are largely unknown.
Purpose of the Study:
- To investigate the physiological role of the ubiquitin ligase ARF-BP1 in vivo.
- To understand ARF-BP1's function in p53 regulation and cellular homeostasis.
Main Methods:
- Generation of arf-bp1 mutant mice.
- Conditional deletion of arf-bp1 in pancreatic beta-cells (arf-bp1(FL/Y)/RIP-cre).
- Concomitant deletion of p53 in arf-bp1 mutant mice (p53(LFL/FL)/arf-bp1(FL/Y)/RIP-cre).
Main Results:
- Complete arf-bp1 inactivation caused embryonic lethality due to p53 activation.
- Conditional deletion of arf-bp1 in beta-cells led to age-dependent beta-cell loss and diabetes.
- Deletion of p53 reversed the diabetic phenotype and extended lifespan in arf-bp1 mutant mice.
Conclusions:
- ARF-BP1 plays a critical role in maintaining beta-cell homeostasis in aging mice.
- ARF-BP1 is essential for regulating p53 stability in vivo.
- Targeting ARF-BP1 may offer therapeutic strategies for age-related diabetes.
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