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HUVEC Tube-formation Assay to Evaluate the Impact of Natural Products on Angiogenesis
Published on: June 24, 2019
The effects of cadmium on VEGF-mediated angiogenesis in HUVECs
Jisun Kim1, Wonbong Lim, Youngjong Ko
1Department of Oral Pathology, 2nd stage of Brain Korea 21 for School of Dentistry, Dental Science Research Institute, Chonnam National University, Bug-Gu, Gwangju, Korea.
Insights
Cadmium exposure has dual effects on blood vessel cells. Low doses promote blood vessel growth via VEGF, while high doses damage cells and inhibit growth, potentially inducing apoptosis.
Area of Science:
- Toxicology
- Vascular Biology
- Cellular Mechanisms
Background:
- Cadmium (Cd) is a toxic element causing vascular dysfunction linked to hypertension and chronic diseases.
- Cadmium's effects involve inflammation, hypertrophy, apoptosis, and angiogenesis, crucial in vascular remodeling.
- Vascular Endothelial Growth Factor (VEGF) is key in pathological cell growth and angiogenesis.
Purpose of the Study:
- To investigate the dose-dependent effects of cadmium on angiogenesis and apoptosis in human umbilical vein endothelial cells (HUVECs).
- To elucidate the role of VEGF-dependent pathways in cadmium-induced vascular changes.
Main Methods:
- HUVECs were exposed to varying concentrations of cadmium chloride (2.5-40 μm).
- Assessed angiogenesis (tube formation), apoptosis, VEGF secretion, VEGFR2 activity, and MAPK pathway activation (ERK, JNK, p38).
Main Results:
- Low cadmium concentrations (5-10 μm) enhanced tube formation, increased VEGF secretion, and VEGFR2 activity.
- All three MAPK pathways (ERK, JNK, p38) were activated by cadmium.
- High cadmium concentrations induced cell damage, disrupted tube formation, and inhibited VEGF, VEGFR2, and MAPK activities.
Conclusions:
- Cadmium exhibits dual functions in HUVECs through VEGF-dependent mechanisms in a dose-dependent manner.
- Low cadmium doses may promote angiogenesis, whereas high doses can induce apoptosis and vascular damage.
Abstract:
Cadmium (Cd) is a highly toxic element that causes morphologic alterations and dysfunction in blood vessels. The altered vascular function caused by cadmium has been implicated in a range of chronic diseases, including hypertension. The effects of cadmium are a multisystem phenomenon involving inflammation, hypertrophy, apoptosis, angiogenesis and important processes involved in vascular remodeling systems. Vascular endothelial growth factor (VEGF) plays a major role in cell growth and angiogenesis under pathologic conditions. VEGF secretion is related to anti-apoptosis protein expression and attenuates apoptosis in endothelial cells. This study examined the VEGF-dependent mechanisms of angiogenesis and apoptosis in cadmium-treated endothelial cells (HUVECs). The effects and mechanisms of cadmium in endothelial cells (HUVECs) were examined by exposing the cells to different doses of cadmium chloride (2.5-40 μ m). After the cadmium treatment, the angiogenesis and apoptosis mechanisms related to VEGF in cadmium-treated HUVECs were examined. As a result, the low concentration of cadmium increased the tube formation in HUVECs. In addition, cadmium at concentrations of 5 and 10 μ m increased VEGF secretion and VEGFR2 activity, which suggest that cadmium affects the growth of blood vessels. All three MAPK pathways, namely ERK, JNK and p38, were activated by cadmium in HUVECs. However, high concentrations of cadmium caused cell damage, disrupted tube formation and inhibited VEGF expression and the activities of VEGFR2 and MAPK in HUVECs. Cadmium has dual functions through VEGF-dependent mechanisms in a dose-dependent manner. In this study, the dual effects of cadmium might alter angiogenesis and induce apoptosis through VEGF pathways in HUVECs.
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