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PCB153-induced overexpression of ID3 contributes to the development of microvascular lesions
Jayanta K Das1, Quentin Felty1
1Department of Environmental & Occupational Health, Florida International University, Miami, Florida, United States of America.
Abstract:
Microvascular lesions resulting from endothelial cell dysfunction are produced in the brain, lung, kidney, and retina of patients of complex chronic diseases. The environmental and molecular risk factors which may contribute in the development of microvascular damage are unclear. The mechanism(s) responsible for initiating microvascular damage remain poorly defined, although several inciting factors have been proposed, including environmental toxicants-induced oxidative stress. Enhanced neovascularization has been implicated in either the development or progression of proliferative vascular lesions. Here, we present evidence for how PCB-induced ROS may contribute to the development of a neovascular phenotype with the aim of elucidating the role of environmental toxicants in endothelial dysfunction with a specific focus on the inhibitor of differentiation protein ID3. We used a combination of phenotype and immunohistochemical analysis followed by validating with protein expression and post-translational modifications with Western Blot and MALDI-TOF/TOF analysis. We also looked for a correlation between ID3 expression in vascular tissue. Our results showed that PCB-induced ROS mediated a highly tube branched neovascular phenotype that also depended on ID3 and Pyk2; and PCB153 treatment increased the size of endothelial spheroids under conditions typically used for clonal selection of stem cell spheroids. High ID3 protein expression correlated with a greater degree of malignancy and oxidative DNA damage marker 8-OHdG in blood vessels from human subjects. PCB153 treatment increased both serine and tyrosine phosphorylation of endothelial ID3. Stable ID3 overexpression increased cell survival of human microvascular endothelial cell line hCMEC/D3. In summary, our data provide evidence that ID3 may play a critical role in regulating vascular endothelial cell survival and development of microvascular lesions induced by persistent environmental pollutants such as PCB153. Findings of this study are important because they provide a new paradigm by which PCBs may contribute to the growth of microvascular lesions.
Insights
Polychlorinated biphenyls (PCBs) exposure may drive microvascular lesions through oxidative stress, impacting endothelial cell survival via the ID3 protein. This study clarifies environmental toxicants
Area of Science:
- Toxicology and Environmental Health
- Vascular Biology and Endothelial Dysfunction
- Molecular and Cellular Biology
Background:
- Microvascular lesions in chronic diseases stem from endothelial dysfunction, with unclear environmental and molecular risk factors.
- Oxidative stress from environmental toxicants is a proposed mechanism for initiating microvascular damage.
- Neovascularization is implicated in the development and progression of proliferative vascular lesions.
Purpose of the Study:
- To investigate how Polychlorinated Biphenyls (PCBs)-induced reactive oxygen species (ROS) contribute to neovascularization.
- To elucidate the role of environmental toxicants in endothelial dysfunction, focusing on the inhibitor of differentiation protein ID3.
- To understand the correlation between ID3 expression and microvascular damage in human subjects.
Main Methods:
- Phenotype and immunohistochemical analysis to assess neovascularization.
- Western Blot and MALDI-TOF/TOF analysis for protein expression and post-translational modifications.
- In vitro studies using human microvascular endothelial cells (hCMEC/D3) with stable ID3 overexpression.
Main Results:
- PCB-induced ROS promoted a branched neovascular phenotype dependent on ID3 and Pyk2.
- PCB153 treatment increased endothelial spheroid size and induced ID3 phosphorylation (serine and tyrosine).
- High ID3 expression correlated with malignancy and oxidative DNA damage (8-OHdG) in human blood vessels.
Conclusions:
- ID3 plays a critical role in vascular endothelial cell survival and the development of microvascular lesions induced by PCBs.
- PCBs, specifically PCB153, may contribute to microvascular lesion growth through mechanisms involving ID3 and oxidative stress.
- This study provides a new paradigm for understanding the impact of persistent environmental pollutants on vascular health.
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