The molecular basis for oxidative stress-induced insulin resistance
Joseph L Evans1, Betty A Maddux, Ira D Goldfine
1Medical Research Institute, San Francisco, CA 94107, USA. jevansphd@earthlink.net
Abstract:
Reactive oxygen and nitrogen molecules have been typically viewed as the toxic by-products of metabolism. However, accumulating evidence has revealed that reactive species, including hydrogen peroxide, serve as signaling molecules that are involved in the regulation of cellular function. The chronic and/or increased production of these reactive molecules or a reduced capacity for their elimination, termed oxidative stress, can lead to abnormal changes in intracellular signaling and result in chronic inflammation and insulin resistance. Inflammation and oxidative stress have been linked to insulin resistance in vivo. Recent studies have found that this association is not restricted to insulin resistance in type 2 diabetes, but is also evident in obese, nondiabetic individuals, and in those patients with the metabolic syndrome. An increased concentration of reactive molecules triggers the activation of serine/threonine kinase cascades such as c-Jun N-terminal kinase, nuclear factor-kappaB, and others that in turn phosphorylate multiple targets, including the insulin receptor and the insulin receptor substrate (IRS) proteins. Increased serine phosphorylation of IRS reduces its ability to undergo tyrosine phosphorylation and may accelerate the degradation of IRS-1, offering an attractive explanation for the molecular basis of oxidative stress-induced insulin resistance. Consistent with this idea, studies with antioxidants such as vitamin E, alpha-lipoic acid, and N-acetylcysteine indicate a beneficial impact on insulin sensitivity, and offer the possibility for new treatment approaches for insulin resistance.
Insights
Oxidative stress, caused by excess reactive molecules, disrupts cellular signaling, leading to inflammation and insulin resistance. Antioxidants may offer new treatments for improving insulin sensitivity.
Area of Science:
- Cellular Biology
- Metabolic Disorders
- Signaling Pathways
Background:
- Reactive oxygen and nitrogen species were traditionally viewed as metabolic by-products.
- Emerging evidence highlights their role as signaling molecules in cellular regulation.
- Oxidative stress, defined as increased reactive species or impaired elimination, disrupts intracellular signaling.
Purpose of the Study:
- To explore the link between oxidative stress, inflammation, and insulin resistance.
- To elucidate the molecular mechanisms underlying oxidative stress-induced insulin resistance.
- To investigate the potential of antioxidants in treating insulin resistance.
Main Methods:
- Review of existing literature on reactive species, oxidative stress, and insulin resistance.
- Analysis of signaling pathways, including serine/threonine kinase cascades (e.g., JNK, NF-κB).
- Examination of the phosphorylation of insulin receptor and IRS proteins.
Main Results:
- Oxidative stress is linked to chronic inflammation and insulin resistance in type 2 diabetes, obesity, and metabolic syndrome.
- Increased reactive molecules activate kinase cascades that phosphorylate insulin signaling proteins.
- Serine phosphorylation of IRS-1 impairs insulin receptor signaling and may promote IRS-1 degradation.
Conclusions:
- Oxidative stress contributes to insulin resistance through altered intracellular signaling pathways.
- Antioxidants like vitamin E, alpha-lipoic acid, and N-acetylcysteine show promise in improving insulin sensitivity.
- These findings suggest potential therapeutic strategies for insulin resistance.
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