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Published on: November 26, 2018
Mesenchymal stem cells ameliorate hyperglycemia-induced endothelial injury through modulation of mitophagy
Wuzheng Zhu1, Yujia Yuan1, Guangneng Liao1
1Key Laboratory of Transplant Engineering and Immunology, NHFPC; Regenerative Medicine Research Centre, West China Hospital, SichuanUniversity, Chengdu, People's Republic of China.
Abstract:
Mitochondrial dysfunction and excessive mitochondrial reactive oxygen species (ROS) are fundamental contributors to endothelial injury in diabetic states. Mesenchymal stem cells (MSCs) have exhibited an extraordinary cytoprotective effect that extends to the modulation of mitochondrial homeostasis. However, the underlying mechanisms have not been clearly defined. Emerging evidence has suggested that mitophagy could counteract mitochondrial-derived oxidative stress through the selective elimination of impaired or dysfunctional mitochondria. Therefore, we investigated whether MSCs could ameliorate high-glucose-induced endothelial injury through the modulation of mitophagy. We observed that exposure of human umbilical vein endothelial cells (HUVECs) to high glucose triggers mitochondrial impairment with excessive mitochondrial fragmentation and ROS generation, loss of membrane potential and reduced ATP production. Furthermore, mitophagy was blunted upon high glucose insult, which accelerated dysfunctional mitochondrial accumulation, initiating the mitochondrial apoptotic pathway and, eventually, endothelial dysfunction. MSCs treatment notably attenuated these perturbations accompanied by an enhancement of Pink1 and Parkin expression, whereas these beneficial effects of MSCs were abolished when either Pink1 or Parkin was knocked down. In aortas of diabetic rats, defective mitophagy was observed, which coincided with marked mitochondrial dysfunction. Ultrastructurally, RAECs from diabetic rats revealed a significant reduction in autophagic vacuoles and a marked increase in fragmented mitochondria. Importantly, the infusion of MSCs restored Pink1/Parkin-mediated mitophagy, ameliorated mitochondrial dysfunction and attenuated apoptosis in endothelial cells in diabetic rats. These results suggest that MSCs may protect endothelial cells from hyperglycemia-induced injury by ameliorating mitochondrial dysfunction via Pink1/Parkin -mediated mitophagy.
Insights
Mesenchymal stem cells (MSCs) protect against high glucose-induced endothelial injury by enhancing mitophagy, a process that clears damaged mitochondria. MSCs restore mitochondrial function and reduce cell death in diabetes.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Stem Cell Therapy
Background:
- Diabetic endothelial injury involves mitochondrial dysfunction and oxidative stress.
- Mesenchymal stem cells (MSCs) offer cytoprotective effects, but mechanisms remain unclear.
- Mitophagy, the selective removal of damaged mitochondria, may counteract mitochondrial damage.
Purpose of the Study:
- To investigate if MSCs ameliorate high-glucose-induced endothelial injury by modulating mitophagy.
- To explore the role of Pink1 and Parkin in MSC-mediated protection.
Main Methods:
- Human umbilical vein endothelial cells (HUVECs) and diabetic rat aortas were used.
- High glucose exposure was employed to induce endothelial injury.
- Mitochondrial function, ROS generation, mitophagy markers (Pink1, Parkin), and apoptosis were assessed.
- MSC treatment effects were evaluated, including in Pink1/Parkin knockdown models.
Main Results:
- High glucose impaired HUVECs, causing mitochondrial fragmentation, ROS increase, and reduced ATP, alongside blunted mitophagy.
- MSC treatment restored mitochondrial function, enhanced Pink1/Parkin expression, and improved mitophagy.
- Knocking down Pink1 or Parkin abolished MSCs' protective effects.
- Diabetic rat aortas showed defective mitophagy and mitochondrial dysfunction, which MSC infusion corrected.
Conclusions:
- MSCs protect endothelial cells from hyperglycemia-induced injury by enhancing Pink1/Parkin-mediated mitophagy.
- This mechanism involves restoring mitochondrial homeostasis and reducing apoptosis.
- Targeting mitophagy represents a potential therapeutic strategy for diabetic vascular complications.
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