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En Face Detection of Nitric Oxide and Superoxide in Endothelial Layer of Intact Arteries
Published on: February 25, 2016
Nitric oxide and coronary vascular endothelium adaptations in hypertension
Andrew S Levy1, Justin C S Chung, Jeffrey T Kroetsch
1Department of Kinesiology, University of Waterloo, Waterloo, Ontario, Canada;
Insights
Hypertension impairs nitric oxide (NO) function in coronary arteries, affecting blood flow. Understanding these NO-related mechanisms is crucial for preventing and treating hypertension-related heart disease.
Area of Science:
- Cardiovascular Physiology
- Hypertension Research
- Nitric Oxide Biology
Background:
- Hypertension elevates coronary vascular resistance due to impaired endothelium-dependent function.
- Nitric oxide (NO) plays a critical role in regulating coronary vascular tone and function.
- Endothelial NO synthase (eNOS) function is central to NO production, but other NO pathways may compensate.
Purpose of the Study:
- To review NO-related mechanisms in coronary vascular function affected by hypertension.
- To explore adaptations in NO synthase isoforms and their compensatory roles in hypertensive coronary arteries.
- To discuss the clinical implications of these adaptations for hypertension and coronary vascular disease management.
Main Methods:
- Literature review of studies on nitric oxide, hypertension, and coronary vascular function.
- Analysis of evidence regarding endothelial NO synthase (eNOS) and other NO pathways.
- Examination of genetic polymorphisms and sex differences in NO-dependent coronary function.
Main Results:
- Impaired eNOS function contributes to elevated coronary vascular resistance in hypertension.
- Potential compensatory mechanisms involving other NO synthase isoforms and dilators exist.
- eNOS gene polymorphisms are associated with hypertension incidence, but mechanisms are unclear.
- Estrogen's effects on eNOS and antioxidant activities may influence sex-specific responses.
Conclusions:
- Significant knowledge gaps exist regarding adaptations in coronary NO function during hypertension.
- Understanding these adaptations is vital for predicting cardiovascular risk and optimizing treatment strategies.
- Further research into sex differences and estrogen's role could inform personalized therapies for hypertension and coronary dysfunction.
Abstract:
This review highlights a number of nitric oxide (NO)-related mechanisms that contribute to coronary vascular function and that are likely affected by hypertension and thus become important clinically as potential considerations in prevention, diagnosis, and treatment of coronary complications of hypertension. Coronary vascular resistance is elevated in hypertension in part due to impaired endothelium-dependent function of coronary arteries. Several lines of evidence suggest that other NO synthase isoforms and dilators other than NO may compensate for impairments in endothelial NO synthase (eNOS) to protect coronary artery function, and that NO-dependent function of coronary blood vessels depends on the position of the vessel in the vascular tree. Adaptations in NOS isoforms in the coronary circulation to hypertension are not well described so the compensatory relationship between these and eNOS in hypertensive vessels is not clear. It is important to understand potential functional consequences of these adaptations as they will impact the efficacy of treatments designed to control hypertension and coronary vascular disease. Polymorphisms of the eNOS gene result in significant associations with incidence of hypertension, although mechanistic details linking the polymorphisms with alterations in coronary vasomotor responses and adaptations to hypertension are not established. This understanding should be developed in order to better predict those individuals at the highest risk for coronary vascular complications of hypertension. Greater endothelium-dependent dilation observed in female coronary arteries is likely related to endothelial Ca(2+) control and eNOS expression and activity. In hypertension models, the coronary vasculature has not been studied extensively to establish mechanisms for sex differences in NO-dependent function. Genomic and nongenomic effects of estrogen on eNOS and direct and indirect antioxidant activities of estrogen are discussed as potential mechanisms of interest in coronary circulation that could have implications for sex- and estrogen status-dependent therapy for hypertension and coronary dysfunction. The current review identifies some important basic knowledge gaps and speculates on the potential clinical relevance of hypertension adaptations in factors regulating coronary NO function.
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