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Published on: July 7, 2014
Oxidative stress: A cause and therapeutic target of diabetic complications
Eiichi Araki1, Takeshi Nishikawa1
1Department of Metabolic Medicine, Faculty of Life Sciences, Kumamoto University, Kumamoto, Japan.
Abstract:
Oxidative stress is defined as excessive production of reactive oxygen species (ROS) in the presence of diminished anti-oxidant substances. Increased oxidative stress could be one of the common pathogenic factors of diabetic complications. However, the mechanisms by which hyperglycemia increases oxidative stress are not fully understood. In this review, we focus on the impact of mitochondrial derived ROS (mtROS) on diabetic complications and suggest potential therapeutic approaches to suppress mtROS. It has been shown that hyperglycemia increases ROS production from mitochondrial electron transport chain and normalizing mitochondrial ROS ameliorates major pathways of hyperglycemic damage, such as activation of polyol pathway, activation of PKC and accumulation of advanced glycation end-products (AGE). Additionally, in subjects with type 2 diabetes, we found a positive correlation between HbA1c and urinary excretion of 8-hydroxydeoxyguanosine (8-OHdG), which reflects mitochondrial oxidative damage, and further reported that 8-OHdG was elevated in subjects with diabetic micro- and macro- vascular complications. We recently created vascular endothelial cell-specific manganese superoxide dismutase (MnSOD) transgenic mice, and clarified that overexpression of MnSOD in endothelium could prevent diabetic retinopathy in vivo. Furthermore, we found that metformin and pioglitazone, both of which have the ability to reduce diabetic vascular complications, could ameliorate hyperglycemia-induced mtROS production by the induction of PPARγ coactivator-1α (PGC-1α) and MnSOD and/or activation of adenosine monophosphate (AMP)-activated protein kinase (AMPK). We also found that metformin and pioglitazone promote mitochondrial biogenesis through the same AMPK-PGC-1α pathway. Taking these results, mtROS could be the key initiator of and a therapeutic target for diabetic vascular complications. (J Diabetes Invest, doi: 10.1111/j.2040-1124.2010.00013.x, 2010).
Insights
Mitochondrial reactive oxygen species (mtROS) contribute to diabetic complications by increasing oxidative stress. Therapies targeting mtROS, like metformin and pioglitazone, show promise in preventing vascular damage.
Area of Science:
- Biochemistry
- Endocrinology
- Cell Biology
Background:
- Oxidative stress, an imbalance between reactive oxygen species (ROS) and antioxidants, is implicated in diabetic complications.
- Hyperglycemia's role in exacerbating oxidative stress and its underlying mechanisms, particularly mitochondrial ROS (mtROS), require further elucidation.
Purpose of the Study:
- To review the impact of mtROS on diabetic complications.
- To explore therapeutic strategies for suppressing mtROS.
Main Methods:
- Review of existing literature on mtROS and diabetic complications.
- Analysis of correlations between HbA1c, oxidative damage markers (8-hydroxydeoxyguanosine), and vascular complications in type 2 diabetes.
- Investigation of MnSOD transgenic mice models for diabetic retinopathy.
- Examination of the effects of metformin and pioglitazone on mtROS production and mitochondrial biogenesis.
Main Results:
- Hyperglycemia elevates mtROS production via the mitochondrial electron transport chain, contributing to pathways like polyol pathway activation, PKC activation, and AGE accumulation.
- Elevated urinary 8-hydroxydeoxyguanosine (8-OHdG) in type 2 diabetes correlates with HbA1c and is associated with micro- and macro-vascular complications.
- Overexpression of manganese superoxide dismutase (MnSOD) in vascular endothelium prevented diabetic retinopathy in vivo.
- Metformin and pioglitazone reduce hyperglycemia-induced mtROS by inducing PGC-1α and MnSOD, and/or activating AMPK, promoting mitochondrial biogenesis.
Conclusions:
- mtROS are a key initiator of diabetic vascular complications.
- Targeting mtROS presents a potential therapeutic strategy for managing diabetic complications.
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