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Published on: February 7, 2018
NADPH oxidase and the cardiovascular toxicity associated with smoking
Mikyung Kim1, Chang-Ho Han2, Moo-Yeol Lee3
1College of Pharmacy, Dongguk University, Goyang, Korea ; Research Institute of Oriental Medicine, College of Korean Medicine, Dongguk University, Gyeongju, Korea.
Abstract:
Smoking is one of the most serious but preventable causes of cardiovascular disease (CVD). Key aspects of pathological process associated with smoking include endothelial dysfunction, a prothrombotic state, inflammation, altered lipid metabolism, and hypoxia. Multiple molecular events are involved in smokinginduced CVD. However, the dysregulations of reactive oxygen species (ROS) generation and metabolism mainly contribute to the development of diverse CVDs, and NADPH oxidase (NOX) has been established as a source of ROS responsible for the pathogenesis of CVD. NOX activation and resultant ROS production by cigarette smoke (CS) treatment have been widely observed in isolated blood vessels and cultured vascular cells, including endothelial and smooth muscle cells. NOX-mediated oxidative stress has also been demonstrated in animal studies. Of the various NOX isoforms, NOX2 has been reported to mediate ROS generation by CS, but other isoforms were not tested thoroughly. Of the many CS constituents, nicotine, methyl vinyl ketone, and α,β-unsaturated aldehydes, such as, acrolein and crotonaldehyde, appear to be primarily responsible for NOX-mediated cytotoxicity, but additional validation will be needed. Human epidemiological studies have reported relationships between polymorphisms in the CYBA gene encoding p22phox, a catalytic subunit of NOX and susceptibility to smoking-related CVDs. In particular, G allele carriers of A640G and -930(A/G) polymorphisms were found to be vulnerable to smoking-induced cardiovascular toxicity, but results for C242T studies are conflicting. On the whole, evidence implicates the etiological role of NOX in smoking-induced CVD, but the clinical relevance of NOX activation by smoking and its contribution to CVD require further validation in human studies. A detailed understanding of the role of NOX would be helpful to assess the risk of smoking to human health, to define high-risk subgroups, and to develop strategies to prevent or treat smoking-induced CVD.
Insights
Smoking significantly contributes to cardiovascular disease (CVD) through increased reactive oxygen species (ROS) generated by NADPH oxidase (NOX). Understanding NOX pathways is crucial for preventing smoking-related CVD.
Area of Science:
- Cardiovascular Science
- Molecular Biology
- Toxicology
Background:
- Smoking is a major preventable cause of cardiovascular disease (CVD).
- Key pathological processes include endothelial dysfunction, inflammation, and altered lipid metabolism.
- Dysregulation of reactive oxygen species (ROS) generation is central to smoking-induced CVD.
Purpose of the Study:
- To investigate the role of NADPH oxidase (NOX) in smoking-induced cardiovascular toxicity.
- To identify specific NOX isoforms and cigarette smoke (CS) constituents involved.
- To explore the clinical relevance of NOX activation in smoking-related CVD.
Main Methods:
- Review of existing literature on NOX activation by CS in cellular and animal models.
- Analysis of human epidemiological studies on gene polymorphisms related to NOX and CVD susceptibility.
- Examination of specific CS components implicated in NOX-mediated cytotoxicity.
Main Results:
- NOX activation and ROS production are consistently observed in response to CS.
- NOX2 is implicated, but other isoforms require further investigation.
- Specific CS constituents like acrolein and crotonaldehyde may drive NOX-mediated damage.
- Genetic polymorphisms in CYBA (encoding p22phox) are linked to smoking-related CVD susceptibility, though results vary.
Conclusions:
- Evidence strongly implicates NOX in the pathogenesis of smoking-induced CVD.
- Further human studies are needed to validate the clinical significance of NOX activation by smoking.
- Understanding NOX pathways can aid in risk assessment and the development of targeted prevention and treatment strategies for smoking-related CVD.
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