Diabetes and mitochondrial function: role of hyperglycemia and oxidative stress
Anabela P Rolo1, Carlos M Palmeira
1Center for Neurosciences and Cell Biology of Coimbra, Department of Zoology, University of Coimbra, 3004-517 Coimbra, Portugal.
Abstract:
Hyperglycemia resulting from uncontrolled glucose regulation is widely recognized as the causal link between diabetes and diabetic complications. Four major molecular mechanisms have been implicated in hyperglycemia-induced tissue damage: activation of protein kinase C (PKC) isoforms via de novo synthesis of the lipid second messenger diacylglycerol (DAG), increased hexosamine pathway flux, increased advanced glycation end product (AGE) formation, and increased polyol pathway flux. Hyperglycemia-induced overproduction of superoxide is the causal link between high glucose and the pathways responsible for hyperglycemic damage. In fact, diabetes is typically accompanied by increased production of free radicals and/or impaired antioxidant defense capabilities, indicating a central contribution for reactive oxygen species (ROS) in the onset, progression, and pathological consequences of diabetes. Besides oxidative stress, a growing body of evidence has demonstrated a link between various disturbances in mitochondrial functioning and type 2 diabetes. Mutations in mitochondrial DNA (mtDNA) and decreases in mtDNA copy number have been linked to the pathogenesis of type 2 diabetes. The study of the relationship of mtDNA to type 2 diabetes has revealed the influence of the mitochondria on nuclear-encoded glucose transporters, glucose-stimulated insulin secretion, and nuclear-encoded uncoupling proteins (UCPs) in beta-cell glucose toxicity. This review focuses on a range of mitochondrial factors important in the pathogenesis of diabetes. We review the published literature regarding the direct effects of hyperglycemia on mitochondrial function and suggest the possibility of regulation of mitochondrial function at a transcriptional level in response to hyperglycemia. The main goal of this review is to include a fresh consideration of pathways involved in hyperglycemia-induced diabetic complications.
Insights
High blood sugar (hyperglycemia) damages tissues through several molecular pathways, with mitochondria playing a key role in diabetic complications. This review explores mitochondrial dysfunction in diabetes pathogenesis.
Area of Science:
- Biochemistry
- Cell Biology
- Endocrinology
Background:
- Uncontrolled hyperglycemia links diabetes to complications via molecular damage pathways.
- Oxidative stress and mitochondrial dysfunction are central to diabetes pathogenesis.
- Mitochondrial DNA (mtDNA) alterations are implicated in type 2 diabetes.
Purpose of the Study:
- To review mitochondrial factors crucial in diabetes pathogenesis.
- To examine hyperglycemia's direct effects on mitochondrial function.
- To explore transcriptional regulation of mitochondria in response to hyperglycemia.
Main Methods:
- Literature review of published studies on hyperglycemia, oxidative stress, and mitochondrial function in diabetes.
- Analysis of molecular mechanisms linking hyperglycemia to diabetic complications.
- Investigation of the role of mitochondrial DNA and nuclear-encoded factors.
Main Results:
- Hyperglycemia triggers damage via protein kinase C (PKC), hexosamine, advanced glycation end product (AGE), and polyol pathways.
- Increased superoxide production links high glucose to these damaging pathways.
- Mitochondrial disturbances, including mtDNA mutations and copy number changes, are associated with type 2 diabetes.
Conclusions:
- Mitochondrial dysfunction is a significant contributor to hyperglycemia-induced diabetic complications.
- Further research into transcriptional regulation of mitochondrial function offers potential therapeutic targets.
- Understanding these pathways is key to addressing diabetic pathology.
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