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Updated: Sep 8, 2025

Microfluidics in Assessing Platelet Function
Published on: November 8, 2024
Role of platelet-derived growth factor c on endothelial dysfunction in cardiovascular diseases
Adriana Grismaldo1, Luis Sobrevia2, Ludis Morales3
1Experimental and Computational Biochemistry Group, Faculty of Sciences, Nutrition and Biochemistry Department, Pontificia Universidad Javeriana, Bogotá, DC, Colombia; Cellular and Molecular Physiology Laboratory, Department of Obstetrics, Division of Obstetrics and Gynaecology, School of Medicine, Faculty of Medicine, Pontificia Universidad Católica de Chile, Santiago 8330024, Chile.
Insights
High glucose levels impair endothelial function, a key factor in cardiovascular diseases. Platelet-derived growth factor C (PDGF-C) shows promise in protecting blood vessels and promoting healing in diabetes by stimulating angiogenesis.
Area of Science:
- Cardiovascular Biology
- Endothelial Function
- Metabolic Disorders
Background:
- Endothelial dysfunction is a hallmark of cardiovascular diseases (CVDs).
- Hyperglycaemia in diabetes mellitus exacerbates endothelial dysfunction via oxidative stress.
- Vascular endothelial growth factor (VEGF) signaling, crucial for endothelial health, is impaired in diabetes.
Purpose of the Study:
- To review the detrimental effects of high glucose on endothelial function.
- To explore the potential therapeutic benefits of Platelet-derived growth factor C (PDGF-C) in hyperglycaemic conditions.
- To highlight PDGF-C's role in preserving endothelial function and promoting vascular repair.
Main Methods:
- Review of existing literature on high glucose-induced endothelial damage.
- Analysis of studies investigating the effects of PDGF-C in diabetic models.
- Examination of PDGF-C's impact on angiogenesis, cell migration, and survival pathways.
Main Results:
- Hyperglycaemia induces oxidative stress, leading to endothelial dysfunction.
- PDGF-C promotes angiogenesis and neovascularization independently of VEGF.
- PDGF-C activates anti-apoptotic and proliferation pathways, protecting endothelial cells in diabetic models.
Conclusions:
- High glucose significantly damages endothelial cells, contributing to CVD.
- PDGF-C offers a potential therapeutic strategy to counteract hyperglycaemia-induced endothelial dysfunction.
- Further research into PDGF-C could lead to novel treatments for diabetic vascular complications.
Abstract:
Loss of endothelial function is a common feature to all cardiovascular diseases (CVDs). One of the risk factors associated with the development of CVDs is the hyperglycaemia that occurs in patients with metabolic disorders such as Type 1 and Type 2 diabetes mellitus. Hyperglycaemia causes endothelial dysfunction through increased production of reactive oxygen species (ROS) from different cellular sources leading to oxidative stress. Vascular endothelial growth factor (VEGF) is essential in the stimulation and maintenance of endothelial functional aspects and, although it can mitigate the impact of ROS, VEGF-mediated signalling is partially inhibited in diabetes mellitus. The search for therapeutic strategies that preserve, protect and improve the functions of the endothelium is of great relevance in the investigation of CVDs associated with hyperglycaemia. Platelet-derived growth factor C (PDGF-C) is a peptide with angiogenic properties, independent of VEGF, that stimulates angiogenesis and revascularization of ischemic tissue. In a diabetic mouse model, PDGF-C stimulates mature endothelial cell migration, angiogenesis, endothelial progenitor cell mobilization, and increased neovascularization, and protects blood vessels in a retinal degeneration model activating anti-apoptosis and proliferation signalling pathways in endothelial cells. This review summarizes the information on the damage that high d-glucose causes on endothelial function and the beneficial effects that PDGF-CC could exert in this condition.
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