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Published on: January 23, 2018
Pharmacological Inhibition of NOX4 Improves Mitochondrial Function and Survival in Human Beta-Cells
Andris Elksnis1, Jing Cen1, Per Wikström2
1Science for Life Laboratory, Department of Medical Cell Biology, Uppsala University, SE-751 23 Uppsala, Sweden.
Abstract:
Previous studies have reported beneficial effects of NADPH oxidase 4 (NOX4) inhibition on beta-cell survival in vitro and in vivo. The mechanisms by which NOX4 inhibition protects insulin producing cells are, however, not known. The aim of the present study was to investigate the effects of a pharmacological NOX4 inhibitor (GLX7013114) on human islet and EndoC-βH1 cell mitochondrial function, and to correlate such effects with survival in islets of different size, activity, and glucose-stimulated insulin release responsiveness. We found that maximal oxygen consumption rates, but not the rates of acidification and proton leak, were increased in islets after acute NOX4 inhibition. In EndoC-βH1 cells, NOX4 inhibition increased the mitochondrial membrane potential, as estimated by JC-1 fluorescence; mitochondrial reactive oxygen species (ROS) production, as estimated by MitoSOX fluorescence; and the ATP/ADP ratio, as assessed by a bioluminescent assay. Moreover, the insulin release from EndoC-βH1 cells at a high glucose concentration increased with NOX4 inhibition. These findings were paralleled by NOX4 inhibition-induced protection against human islet cell death when challenged with high glucose and sodium palmitate. The NOX4 inhibitor protected equally well islets of different size, activity, and glucose responsiveness. We conclude that pharmacological alleviation of NOX4-induced inhibition of beta-cell mitochondria leads to increased, and not decreased, mitochondrial ROS, and this was associated with protection against cell death occurring in different types of heterogeneous islets. Thus, NOX4 inhibition or modulation may be a therapeutic strategy in type 2 diabetes that targets all types of islets.
Insights
Inhibiting NADPH oxidase 4 (NOX4) enhances beta-cell mitochondrial function and reactive oxygen species (ROS) production, protecting against cell death. This suggests NOX4 inhibition is a promising therapeutic strategy for type 2 diabetes affecting all islet types.
Area of Science:
- Cell Biology
- Metabolism
- Endocrinology
Background:
- NADPH oxidase 4 (NOX4) inhibition shows promise for beta-cell survival.
- Mechanisms underlying NOX4's protective effects on insulin-producing cells remain unclear.
Purpose of the Study:
- Investigate the impact of a NOX4 inhibitor (GLX7013114) on human islet and EndoC-βH1 cell mitochondrial function.
- Correlate mitochondrial effects with cell survival across diverse islet characteristics.
- Explore NOX4 inhibition's potential as a therapeutic strategy for type 2 diabetes.
Main Methods:
- Utilized a pharmacological NOX4 inhibitor (GLX7013114) on human islets and EndoC-βH1 cells.
- Assessed mitochondrial function via oxygen consumption, acidification, proton leak, membrane potential (JC-1), ROS production (MitoSOX), and ATP/ADP ratio.
- Measured glucose-stimulated insulin release and cell death under high glucose and palmitate challenges.
Main Results:
- NOX4 inhibition increased maximal oxygen consumption in islets.
- In EndoC-βH1 cells, NOX4 inhibition elevated mitochondrial membrane potential, ROS production, and ATP/ADP ratio.
- Insulin release and beta-cell survival improved with NOX4 inhibition, irrespective of islet size or function.
Conclusions:
- Pharmacological NOX4 inhibition boosts mitochondrial ROS and function, protecting beta-cells from death.
- NOX4 modulation represents a potential therapeutic approach for type 2 diabetes, benefiting all islet types.
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