Increased insulin sensitivity and diminished pancreatic beta-cell function in DNA repair deficient Ercc1d/- mice
Ana P Huerta Guevara1, Sara J McGowan2, Melissa Kazantzis3
1Section of Molecular Metabolism and Nutrition, Department of Pediatrics, University of Groningen, University Medical Center Groningen, Hanzeplein 1, 9700 RB Groningen, the Netherlands.
Background:
Type 2 diabetes (T2DM) is an age-associated disease characterized by hyperglycemia due to insulin resistance and decreased beta-cell function. DNA damage accumulation has been associated with T2DM, but whether DNA damage plays a role in the pathogenesis of the disease is unclear. Here, we used mice deficient for the DNA excision-repair gene Ercc1 to study the impact of persistent endogenous DNA damage accumulation on energy metabolism, glucose homeostasis and beta-cell function.
Methods:
ERCC1-XPF is an endonuclease required for multiple DNA repair pathways and reduced expression of ERCC1-XPF causes accelerated accumulation of unrepaired endogenous DNA damage and accelerated aging in humans and mice. In this study, energy metabolism, glucose metabolism, beta-cell function and insulin sensitivity were studied in Ercc1d/- mice, which model a human progeroid syndrome.
Results:
Ercc1d/- mice displayed suppression of the somatotropic axis and altered energy metabolism. Insulin sensitivity was increased, whereas, plasma insulin levels were decreased in Ercc1d/- mice. Fasting induced hypoglycemia in Ercc1d/- mice, which was the result of increased glucose disposal. Ercc1d/- mice exhibit a significantly reduced beta-cell area, even compared to control mice of similar weight. Glucose-stimulated insulin secretion in vivo was decreased in Ercc1d/- mice. Islets isolated from Ercc1d/- mice showed increased DNA damage markers, decreased glucose-stimulated insulin secretion and increased susceptibility to apoptosis.
Conclusion:
Spontaneous DNA damage accumulation triggers an adaptive response resulting in improved insulin sensitivity. Loss of DNA repair, however, does negatively impacts beta-cell survival and function in Ercc1d/- mice.
Insights
Persistent DNA damage accumulation improves insulin sensitivity but impairs beta-cell function and survival in mice. This study investigates the role of DNA repair in type 2 diabetes pathogenesis.
Area of Science:
- Genetics and Aging
- Metabolic Diseases
- DNA Repair Mechanisms
Background:
- Type 2 diabetes (T2DM) is linked to aging, hyperglycemia, insulin resistance, and reduced beta-cell function.
- The role of accumulated DNA damage in T2DM pathogenesis remains unclear.
- Endogenous DNA damage accumulation is associated with accelerated aging and progeroid syndromes.
Purpose of the Study:
- To investigate the impact of persistent endogenous DNA damage on energy metabolism, glucose homeostasis, and beta-cell function.
- To utilize Ercc1-deficient mice as a model for studying DNA repair deficiency in T2DM.
- To explore the link between DNA repair, aging, and metabolic dysfunction.
Main Methods:
- Studied energy metabolism, glucose metabolism, beta-cell function, and insulin sensitivity in Ercc1 deficient (Ercc1d/-) mice.
- Ercc1d/- mice model a human progeroid syndrome, exhibiting accelerated aging due to impaired DNA repair.
- Assessed glucose-stimulated insulin secretion, beta-cell area, and islet apoptosis.
Main Results:
- Ercc1d/- mice showed suppressed somatotropic axis, altered energy metabolism, increased insulin sensitivity, and decreased plasma insulin levels.
- Hypoglycemia occurred during fasting due to increased glucose disposal.
- Reduced beta-cell area, impaired glucose-stimulated insulin secretion, and increased apoptosis in islets were observed.
Conclusions:
- Spontaneous DNA damage accumulation can induce an adaptive response leading to improved insulin sensitivity.
- However, loss of DNA repair function negatively impacts beta-cell survival and function.
- DNA repair is crucial for maintaining beta-cell health and overall metabolic homeostasis.
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