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Mitophagy protects β cells from inflammatory damage in diabetes
Vaibhav Sidarala, Gemma L. Pearson, Vishal S. Parekh, Benjamin Thompson, Lisa Christen, Morgan A. Gingerich, Jie Zhu, Tracy Stromer, Jianhua Ren, Emma C. Reck, Biaoxin Chai, John A. Corbett, Thomas Mandrup-Poulsen, Leslie S. Satin, Scott A. Soleimanpour
Vaibhav Sidarala, Gemma L. Pearson, Vishal S. Parekh, Benjamin Thompson, Lisa Christen, Morgan A. Gingerich, Jie Zhu, Tracy Stromer, Jianhua Ren, Emma C. Reck, Biaoxin Chai, John A. Corbett, Thomas Mandrup-Poulsen, Leslie S. Satin, Scott A. Soleimanpour
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Research Article Endocrinology

Mitophagy protects β cells from inflammatory damage in diabetes

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Abstract

Inflammatory damage contributes to β cell failure in type 1 and 2 diabetes (T1D and T2D, respectively). Mitochondria are damaged by inflammatory signaling in β cells, resulting in impaired bioenergetics and initiation of proapoptotic machinery. Hence, the identification of protective responses to inflammation could lead to new therapeutic targets. Here, we report that mitophagy serves as a protective response to inflammatory stress in both human and rodent β cells. Utilizing in vivo mitophagy reporters, we observed that diabetogenic proinflammatory cytokines induced mitophagy in response to nitrosative/oxidative mitochondrial damage. Mitophagy-deficient β cells were sensitized to inflammatory stress, leading to the accumulation of fragmented dysfunctional mitochondria, increased β cell death, and hyperglycemia. Overexpression of CLEC16A, a T1D gene and mitophagy regulator whose expression in islets is protective against T1D, ameliorated cytokine-induced human β cell apoptosis. Thus, mitophagy promotes β cell survival and prevents diabetes by countering inflammatory injury. Targeting this pathway has the potential to prevent β cell failure in diabetes and may be beneficial in other inflammatory conditions.

Authors

Vaibhav Sidarala, Gemma L. Pearson, Vishal S. Parekh, Benjamin Thompson, Lisa Christen, Morgan A. Gingerich, Jie Zhu, Tracy Stromer, Jianhua Ren, Emma C. Reck, Biaoxin Chai, John A. Corbett, Thomas Mandrup-Poulsen, Leslie S. Satin, Scott A. Soleimanpour

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Figure 9

Mitophagy is a protective response to cytokine-induced nitrosative/oxidative stress.

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Mitophagy is a protective response to cytokine-induced nitrosative/oxida...
(A) Quantification of cell death by cytoplasmic histone–complexed DNA fragment ELISA (normalized to total DNA content) in WT and β-Clec16aKO islets treated with/without cytokines for 24 hours. n = 4/group. **P < 0.01 by ANOVA. (B) Cleaved caspase 3 expression by WB in nontargeting (NT) or Clec16a-specific shRNA expressing Min6 β cells treated with cytokines for 6 hours. Representative of 3 independent experiments. (C) Cleaved caspase 3 densitometry (normalized to actin) from studies depicted in B. n = 3/group. *P < 0.05, **P < 0.01 versus by ANOVA. (D) Quantification of cell death by cytoplasmic histone–complexed DNA fragment ELISA (normalized to total DNA content) in WT and β-Clec16aKO islets treated with/without NMMA (500 μM) for 48 hours and treated with/without cytokines for the final 24 hours. n = 3/group; *P < 0.05 by ANOVA. (E) Cell death–detection ELISA (normalized to total DNA content) in WT and β-Clec16aKO islets treated with/without 500 μM tiron for 48 hours and treated with/without cytokines for the final 24 hours. n = 4/group. *P < 0.05, **P <0.01 by ANOVA.

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