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High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
PM2.5 promotes β cell damage by increasing inflammatory factors in mice with streptozotocin
Baoyu Zhang1, Ruili Yin1, Jianan Lang1
1Beijing Key Laboratory of Diabetes Prevention and Research, Centre for Endocrine Metabolic and Immune Disease, Luhe Hospital, Capital Medical University, Beijing 101149, P.R. China.
Abstract:
Emerging evidence indicates that exposure to fine particulate matter contributes to the onset of diabetes. The present study aimed to investigate the mechanism of particulate matters (PM)2.5 affecting glucose homeostasis in mice with type 1 diabetes mellitus. Male C57BL/6 mice were housed under filtered air (FA) or PM2.5 for 12 weeks and then received intraperitoneal injection of streptozotocin (STZ; 40 mg/kg) or acetic buffer daily for 5 days. At 4 weeks after the last injection, fasting glucose was tested. In the plasma and liver, cholesterol levels were determined by cholesterol oxidase-peroxidase and triglyceride levels were determined by triglycerophosphate oxidase-peroxidase. Homeostasis model assessment of β cell function (Homa-β) was computed based on fasting insulin and glucose levels. Interleukin-1β (IL-1β) and tumor necrosis factor-α (TNFα) levels in plasma, visceral adipose tissues, RAW264.7 macrophages and MIN6 pancreatic β cells treated with PM2.5 (0-50 µg/ml) were quantified via ELISA. Before STZ injection, fasting blood glucose (FBG) levels were similar between FA and PM2.5 groups. After STZ injection, FBG levels were higher in mice pre-exposed to PM2.5 compared with those pre-exposed to FA. When taking FBG levels ≥7 mmol/l as the criteria for impaired glucose level, its incidence was 53.3% and 77.8% in FA and PM2.5 groups, respectively. Independent of STZ injection, IL-1β levels in the adipose tissue were upregulated in mice pre-exposed to PM2.5 compared with FA. The addition of PM2.5 stimulated IL-1β and TNFα production in macrophages and pancreatic β cells, and inhibited the secretion of insulin from MIN6 cells in a dose-dependent manner. In conclusion, pre-exposure of PM2.5 impaired pancreatic β cells in mice upon STZ injection, partially via enhanced inflammation, and suppressed the secretion of insulin.
Insights
Exposure to fine particulate matter (PM2.5) worsens glucose control and insulin secretion in mice with type 1 diabetes. PM2.5 exposure enhances inflammation, impairing pancreatic beta cells and increasing diabetes incidence.
Area of Science:
- Environmental Health
- Endocrinology
- Toxicology
Background:
- Emerging evidence links fine particulate matter (PM2.5) exposure to diabetes development.
- The precise mechanisms by which PM2.5 affects glucose homeostasis, particularly in the context of type 1 diabetes, require further elucidation.
Purpose of the Study:
- To investigate the impact of PM2.5 pre-exposure on glucose homeostasis in a mouse model of type 1 diabetes.
- To explore the underlying mechanisms, including inflammation and pancreatic beta-cell function, affected by PM2.5.
Main Methods:
- Mice were pre-exposed to filtered air (FA) or PM2.5 for 12 weeks.
- Type 1 diabetes was induced using streptozotocin (STZ) injection.
- Fasting glucose, insulin, cholesterol, triglyceride, and inflammatory cytokine (IL-1β, TNFα) levels were measured.
Main Results:
- PM2.5 pre-exposure significantly increased fasting blood glucose levels and the incidence of impaired glucose levels after STZ injection.
- PM2.5 exposure upregulated IL-1β in adipose tissue, independent of STZ.
- PM2.5 stimulated IL-1β and TNFα production in macrophages and pancreatic beta cells, and dose-dependently inhibited insulin secretion from MIN6 cells.
Conclusions:
- Pre-exposure to PM2.5 exacerbates glucose intolerance in STZ-induced type 1 diabetes in mice.
- This impairment is partly mediated by enhanced inflammation and direct suppression of pancreatic beta-cell function and insulin secretion.
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