NLRP3 inflammasome mediates oxidative stress-induced pancreatic islet dysfunction

Author:

Sokolova Marina123,Sahraoui Afaf24,Høyem Merete4,Øgaard Jonas1,Lien Egil5,Aukrust Pål1236,Yndestad Arne123,Ranheim Trine123,Scholz Hanne24

Affiliation:

1. Research Institute of Internal Medicine, Oslo University Hospital, Rikshospitalet, Norway

2. Institute of Clinical Medicine, University of Oslo, Oslo, Norway

3. K.G. Jebsen Inflammation Research Center, University of Oslo, Oslo, Norway

4. Institute for Surgical Research and Section for Transplantation Surgery, Oslo University Hospital, Oslo, Norway

5. Division of Infectious Diseases and Immunology, University of Massachusetts Medical School, Worcester, Massachusetts

6. Section of Clinical Immunology and Infectious Diseases, Oslo University Hospital, Oslo, Norway

Abstract

Inflammasomes are multiprotein inflammatory platforms that induce caspase-1 activation and subsequently interleukin (IL)-1β and IL-18 processing. The NLRP3 inflammasome is activated by different forms of oxidative stress, and, based on the central role of IL-1β in the destruction of pancreatic islets, it could be related to the development of diabetes. We therefore investigated responses in wild-type C57Bl/6 (WT) mice, NLRP3−/− mice, and mice deficient in apoptosis-associated speck-like protein containing a caspase-recruitment domain (ASC) after exposing islets to short-term hypoxia or alloxan-induced islet damage. NLRP3-deficient islets compared with WT islets had preserved function ex vivo and were protected against hypoxia-induced cell death. Furthermore, NLRP3 and ASC-deficient mice were protected against oxidative stress-induced diabetes caused by repetitive low-dose alloxan administration, and this was associated with reduced β-cell death and reduced macrophage infiltration. This suggests that the beneficial effect of NLRP3 inflammasome deficiency on oxidative stress-mediated β-cell damage could involve reduced macrophage infiltration and activation. To support the role of macrophage activation in alloxan-induced diabetes, we injected WT mice with liposomal clodronate, which causes macrophage depletion before induction of a diabetic phenotype by alloxan treatment, resulting in improved glucose homeostasis in WT mice. We show here that the NLRP3 inflammasome acts as a mediator of hypoxia and oxidative stress in insulin-producing cells, suggesting that inhibition of the NLRP3 inflammasome could have beneficial effects on β-cell preservation.

Funder

Helse Sør-Øst Regional Health Authority, Norway

Norwegian Research Council

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology,Endocrinology, Diabetes and Metabolism

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