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Reduced peroxisomal function increases insulin secretion, promotes insulin oxidation, and impairs β cell maturity
J. Jason Collier, Caroline R. Cothern, Maggie P. Ducote, Thomas M. Martin, Melissa A. Linden, Robert C. Noland, David H. Burk, Samuel D. Dupuy, Michael D. Karlstad, Krisztian Stadler, Sarah S. Hirschbeck, Thanh D. Do, Anastasia Coldren, Marcela Brissova, Teayoun Kim, Kirk M. Habegger, Sujoy Ghosh, Zane A. Vickery, Qudus Sarumi, Shawn R. Campagna, Susan J. Burke
J. Jason Collier, Caroline R. Cothern, Maggie P. Ducote, Thomas M. Martin, Melissa A. Linden, Robert C. Noland, David H. Burk, Samuel D. Dupuy, Michael D. Karlstad, Krisztian Stadler, Sarah S. Hirschbeck, Thanh D. Do, Anastasia Coldren, Marcela Brissova, Teayoun Kim, Kirk M. Habegger, Sujoy Ghosh, Zane A. Vickery, Qudus Sarumi, Shawn R. Campagna, Susan J. Burke
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Research Article Endocrinology Metabolism

Reduced peroxisomal function increases insulin secretion, promotes insulin oxidation, and impairs β cell maturity

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Abstract

Given the central role of peroxisomes in lipid metabolism and redox homeostasis, we hypothesized that peroxisomal activity is critical for sustaining β cell function and identity. Pex5 deletion models were employed to investigate the loss of peroxisomal function on glucose-stimulated insulin secretion (GSIS), oxidative stress, and β cell maturity markers. Peroxisome deficiency in male mice resulted in elevated GSIS. Glucose intolerance developed despite increased insulin secretion. Ion mobility mass spectrometry revealed oxidation of insulin proteins and a truncated insulin 2–derived peptide in islets from mice with a tissue-specific deficiency in peroxisomes. Peroxisome loss of function increased multiple markers of oxidative stress, including altered metabolite profiles, lipid peroxidation, and protein carbonylation. These findings revealed that increased secretion of oxidized insulin protein is insufficient to regulate whole-body glucose homeostasis. Peroxisome deficiency also reduced markers of β cell maturity. Based on these outcomes, we identified the peroxisome organelle as a key regulatory component of glucose homeostasis by protecting insulin from oxidative modification and degradation and by supporting maintenance of mature β cells.

Authors

J. Jason Collier, Caroline R. Cothern, Maggie P. Ducote, Thomas M. Martin, Melissa A. Linden, Robert C. Noland, David H. Burk, Samuel D. Dupuy, Michael D. Karlstad, Krisztian Stadler, Sarah S. Hirschbeck, Thanh D. Do, Anastasia Coldren, Marcela Brissova, Teayoun Kim, Kirk M. Habegger, Sujoy Ghosh, Zane A. Vickery, Qudus Sarumi, Shawn R. Campagna, Susan J. Burke

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Figure 6

Reduction in CPT1a abundance in peroxisomal-deficient male mice restores β cell GSIS and islet ATP content to control levels.

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Reduction in CPT1a abundance in peroxisomal-deficient male mice restores...
(A) mRNA abundance by RT-PCR in islets from male Pex5/Cpt1aCON and Pex5/Cpt1aPdx1–/– mice; n = 7–8. (B) Pex5 abundance by immunoblot in isolated islets (top) and CPT1a abundance in pancreatic tissue (bottom), n = 4, scale bar: 50 μm. (C) mRNA abundance by RT-PCR in liver and scWAT subcutaneous White Adipose Tissue (scWAT); n = 10. (D) ITT in 12-week-old mice; n = 14–18. (E) GTT (i.p.) in 14-week-old mice; n = 24–36. (F) GTT (i.p.) in 26-week-old mice; n = 8–16. (G) Serum insulin from blood taken at 0-, 15-, and 60-minute time points during GTT shown in F; n = 12–16. (H–J) Fasting blood glucose, glucose infusion rate, and plasma insulin, respectively, during hyperglycemic clamp in 18-week-old mice; n = 4–5. (K and L) Glucose-mediated (16.7 mM glucose; G 16.7) and KCl-mediated (20 mM; KCl 20) insulin secretion and corresponding AUC calculation in islets from 15-week-old mice; n = 4. (M) Insulin content in islets used for the experiment in K and L. (N) mRNA abundance by RT-PCR in islets; n = 7–8. (O–R) Insulin-positive area, islet fraction, β cell mass, and pancreas mass, respectively, in 30-week-old male mice; n = 10. (S) Serum insulin in 16-week-old (n = 7) and 30-week-old (n = 14–17) mice. (T) ATP content in isolated islets from 30-week-old mice treated with glucose (2, 11, or 20 mM); n = 4–8. ns, not significant; *P < 0.05. P values shown on graph represent AUC calculations versus controls. One-way ANOVA with multiple comparisons (A, C, L, N, S, and T) or 2-tailed Student’s t test (M and O–R).

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