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.

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.