The role of mitochondrial reactive oxygen species in insulin resistance
Anita Ayer1, Daniel J Fazakerley2, David E James3
1Heart Research Institute, The University of Sydney, Sydney, New South Wales, Australia.
Abstract:
Insulin resistance is one of the earliest pathological features of a suite of diseases including type 2 diabetes collectively referred to as metabolic syndrome. There is a growing body of evidence from both pre-clinical studies and human cohorts indicating that reactive oxygen species, such as the superoxide radical anion and hydrogen peroxide are key players in the development of insulin resistance. Here we review the evidence linking mitochondrial reactive oxygen species generated within mitochondria with insulin resistance in adipose tissue and skeletal muscle, two major insulin sensitive tissues. We outline the relevant mitochondria-derived reactive species, how the mitochondrial redox state is regulated, and methodologies available to measure mitochondrial reactive oxygen species. Importantly, we highlight key experimental issues to be considered when studying the role of mitochondrial reactive oxygen species in insulin resistance. Evaluating the available literature on both mitochondrial reactive oxygen species/redox state and insulin resistance in a variety of biological systems, we conclude that the weight of evidence suggests a likely role for mitochondrial reactive oxygen species in the etiology of insulin resistance in adipose tissue and skeletal muscle. However, major limitations in the methods used to study reactive oxygen species in insulin resistance as well as the lack of data linking mitochondrial reactive oxygen species and cytosolic insulin signaling pathways are significant obstacles in proving the mechanistic link between these two processes. We provide a framework to guide future studies to provide stronger mechanistic information on the link between mitochondrial reactive oxygen species and insulin resistance as understanding the source, localization, nature, and quantity of mitochondrial reactive oxygen species, their targets and downstream signaling pathways may pave the way for important new therapeutic strategies.
Insights
Mitochondrial reactive oxygen species (ROS) likely contribute to insulin resistance in key tissues like adipose tissue and skeletal muscle. Further research is needed to confirm the exact mechanisms and develop targeted therapies.
Area of Science:
- Biochemistry
- Cellular Biology
- Metabolic Diseases
Background:
- Insulin resistance is an early hallmark of metabolic syndrome and type 2 diabetes.
- Reactive oxygen species (ROS), including superoxide and hydrogen peroxide, are implicated in insulin resistance development.
- Mitochondria are a significant source of ROS within cells.
Purpose of the Study:
- To review the evidence linking mitochondrial ROS to insulin resistance in adipose tissue and skeletal muscle.
- To outline mitochondria-derived ROS, redox state regulation, and measurement methodologies.
- To highlight experimental considerations for studying mitochondrial ROS in insulin resistance.
Main Methods:
- Literature review of pre-clinical studies and human cohorts.
- Analysis of data on mitochondrial ROS/redox state and insulin resistance.
- Examination of methodologies for measuring mitochondrial ROS.
Main Results:
- Evidence suggests a probable role for mitochondrial ROS in the etiology of insulin resistance in adipose and skeletal muscle.
- Significant limitations exist in current methods for studying ROS in insulin resistance.
- A lack of data connects mitochondrial ROS to cytosolic insulin signaling pathways.
Conclusions:
- Mitochondrial ROS are likely involved in insulin resistance, but direct mechanistic proof is hindered by methodological limitations.
- Future studies should focus on clarifying the source, localization, nature, and quantity of mitochondrial ROS and their targets.
- Understanding these factors could lead to novel therapeutic strategies for insulin resistance.
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