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Caveolin-1 is a negative regulator of NADPH oxidase-derived reactive oxygen species
Feng Chen1, Scott Barman2, Yanfang Yu1
1Department of Forensic Medicine, Nanjing Medical University, Nanjing, Jiangsu 210029, China; Vascular Biology Center and Georgia Regents University, Augusta, GA 30912, USA.
Abstract:
Changes in the expression and function of caveolin-1 (Cav-1) have been proposed as a pathogenic mechanism underlying many cardiovascular diseases. Cav-1 binds to and regulates the activity of numerous signaling proteins via interactions with its scaffolding domain. In endothelial cells, Cav-1 has been shown to reduce reactive oxygen species (ROS) production, but whether Cav-1 regulates the activity of NADPH oxidases (Noxes), a major source of cellular ROS, has not yet been shown. Herein, we show that Cav-1 is primarily expressed in the endothelium and adventitia of pulmonary arteries (PAs) and that Cav-1 expression is reduced in isolated PAs from multiple models of pulmonary artery hypertension (PH). Reduced Cav-1 expression correlates with increased ROS production in the adventitia of hypertensive PA. In vitro experiments revealed a significant ability of Cav-1 and its scaffolding domain to inhibit Nox1-5 activity and it was also found that Cav-1 binds to Nox5 and Nox2 but not Nox4. In addition to posttranslational actions, in primary cells, Cav-1 represses the mRNA and protein expression of Nox2 and Nox4 through inhibition of the NF-κB pathway. Last, in a mouse hypoxia model, the genetic ablation of Cav-1 increased the expression of Nox2 and Nox4 and exacerbated PH. Together, these results suggest that Cav-1 is a negative regulator of Nox function via two distinct mechanisms, acutely through direct binding and chronically through alteration of expression levels. Accordingly, the loss of Cav-1 expression in cardiovascular diseases such as PH may account for the increased Nox activity and greater production of ROS.
Insights
Caveolin-1 (Cav-1) loss increases reactive oxygen species (ROS) by activating NADPH oxidases (Noxes). This study reveals Cav-1 as a key regulator of Nox activity, suggesting its deficiency contributes to cardiovascular diseases like pulmonary hypertension.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Cellular Signaling
Background:
- Caveolin-1 (Cav-1) dysregulation is implicated in cardiovascular diseases.
- Cav-1 modulates signaling proteins, but its role in regulating NADPH oxidases (Noxes), a major ROS source, is unclear.
- Endothelial Cav-1 typically reduces reactive oxygen species (ROS) production.
Purpose of the Study:
- To investigate the role of Cav-1 in regulating Nox activity and ROS production in pulmonary arteries.
- To determine the mechanisms by which Cav-1 affects Nox expression and function.
- To assess the impact of Cav-1 deficiency on pulmonary hypertension (PH).
Main Methods:
- Immunohistochemistry to assess Cav-1 expression in pulmonary arteries.
- In vitro assays to measure Nox activity and Cav-1 binding to Nox proteins.
- Analysis of Nox mRNA and protein expression in primary cells and a mouse hypoxia model.
- Genetic ablation of Cav-1 in a mouse model of PH.
Main Results:
- Cav-1 is expressed in pulmonary artery endothelium and adventitia; its expression is reduced in PH models.
- Reduced Cav-1 correlates with increased adventitial ROS production.
- Cav-1 directly inhibits Nox1-5 activity, binding to Nox2 and Nox5.
- Cav-1 represses Nox2 and Nox4 expression via the NF-κB pathway.
- Cav-1 genetic ablation exacerbates PH and increases Nox2/Nox4 expression in mice.
Conclusions:
- Cav-1 acts as a negative regulator of Nox function through direct inhibition and by repressing Nox expression.
- Loss of Cav-1 contributes to increased Nox activity and ROS production in cardiovascular diseases like PH.
- Cav-1 deficiency exacerbates PH, highlighting its protective role.
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