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Published on: October 31, 2016
Shear stress insensitivity of endothelial nitric oxide synthase expression as a genetic risk factor for coronary
Marco Cattaruzza1, Tomasz J Guzik, Wojciech Słodowski
1Department of Cardiovascular Physiology, University of Göttingen, Göttingen, Germany.
Insights
A specific gene variant (-786C/T SNP in the NOS-3 gene) is linked to coronary heart disease (CHD). The CC genotype impairs nitric oxide (NO) production, increasing atherosclerosis risk.
Area of Science:
- Cardiovascular Genetics
- Molecular Biology
- Atherosclerosis Research
Background:
- Coronary heart disease (CHD) involves atherosclerosis, where endothelial nitric oxide (NO) plays a protective role.
- Shear stress-mediated NO release is crucial for preventing atherosclerosis.
- Polymorphisms in the endothelial NO synthase (NOS-3) gene may influence CHD development.
Purpose of the Study:
- To investigate the functional impact of the -786C/T single nucleotide polymorphism (SNP) in the human NOS-3 gene on endothelial NO production.
- To determine if this NOS-3 gene polymorphism is associated with coronary heart disease (CHD).
Main Methods:
- Genotyping of endothelial cells and patient cohorts for the -786C/T NOS-3 SNP.
- Analysis of NOS-3 mRNA and protein expression under shear stress conditions.
- Assessment of NO-dependent vasodilation in saphenous vein grafts.
- Quantitative coronary angiography in genotyped patients.
Main Results:
- Shear stress-induced NOS-3 expression was observed in TT and CT genotypes but not in the CC genotype.
- Decoy oligonucleotide treatment restored NOS-3 expression in CC cells.
- NO-mediated relaxation was significantly reduced in vein grafts from CC genotype patients.
- The CC genotype was significantly more prevalent in CHD-positive patients compared to CHD-negative controls.
Conclusions:
- The -786C/T SNP in the NOS-3 gene is a genetic risk factor for CHD.
- The CC genotype likely impairs shear stress-dependent NOS-3 expression, potentially by blocking transcription factor binding.
- This genetic variation affects endothelial function and contributes to atherosclerosis development.
Abstract:
Coronary heart disease (CHD) is based on the development of atherosclerosis in coronary arteries. Shear stress-induced endothelial nitric oxide (NO) release not only contributes to local blood pressure control but also effectively helps to retard atherosclerosis. Therefore, functionally relevant polymorphisms in the endothelial NO synthase (NOS-3) gene may contribute to the development of CHD. NOS-3 expression was analyzed in endothelial cells isolated from umbilical cords genotyped for the -786C/T single nucleotide polymorphism (SNP) of the human nos-3 gene. Moreover, NO-dependent relaxation was examined in segments of saphenous vein isolated from genotyped patients undergoing aortocoronary bypass surgery, and patients subjected to quantitative coronary angiography were genotyped to verify an association between this SNP and CHD. Shear stress-induced NOS-3 mRNA and protein expression was present in TT and CT genotype cells but absent in cells with CC genotype. Pretreatment of these cells with a decoy oligonucleotide comprising position -800 to -779 of the C-type nos-3 promoter reconstituted shear stress-induced NOS-3 expression. These results were confirmed by reporter gene analysis with the corresponding nos-3 promoter luciferase constructs. In addition, the NO-mediated relaxant response of vein grafts from CC genotype patients was significantly attenuated as compared with the CT or TT genotype, and in CHD-positive patients, the CC genotype was significantly more frequent (19.0%) than in CHD-negative patients (4.4%). The -786C/T SNP of the nos-3 gene thus constitutes a genetic risk factor for CHD, presumably due to binding of an inhibitory transcription factor to the C-type promoter blocking shear stress-dependent maintenance of NOS-3 expression.
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