The role of SELE gene polymorphism in ST-elevation myocardial infarction
N P Babushkina1, A M Nikolaeva2, A D Dolbnya3
1Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences, Tomsk, Russia.
Insights
Genetic variations in the SELE gene, specifically the rs5353 polymorphism, are linked to an increased risk of ST-elevation myocardial infarction (STEMI), a severe form of ischemic heart disease. This finding highlights the SELE gene
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- Ischemic heart disease (IHD), particularly ST-elevation myocardial infarction (STEMI), poses significant health challenges.
- Endothelial dysfunction in myocardial infarction is associated with sE-selectin levels, a molecule involved in neutrophil recruitment and inflammation.
Purpose of the Study:
- To investigate the association between intronic polymorphisms (rs5353, rs3917412, rs1534904) in the E-selectin coding gene (SELE) and STEMI.
- To explore the potential regulatory roles of these SELE gene variants in cardiovascular disease (CVD) pathogenesis.
Main Methods:
- Genotyping of SELE gene polymorphisms (rs5353, rs3917412, rs1534904) in STEMI patients (n=74) and a population control group (n=136).
- Statistical analysis of genotype frequencies and their association with STEMI.
- Assessment of functional significance using RegulomeDB classification and analysis of potential co-regulation of nearby genes.
Main Results:
- Statistically significant differences in rs5353 genotype frequencies were observed between STEMI patients and the control group (p=0.004).
- The CC genotype of rs5353 was identified as a predisposing factor for STEMI (OR=6.93, p=0.002).
- All three studied variants (rs5353, rs3917412, rs1534904) are classified as functional class 1f, suggesting high regulatory potential.
Conclusions:
- The rs5353 polymorphism in the SELE gene is associated with an increased risk of STEMI.
- These findings support the involvement of the SELE gene and potentially a broader genomic region in the pathogenesis of CVDs, likely through inflammatory and immune response pathways.
Abstract:
Ischemic heart disease (IHD) is an important medical and social problem. ST-elevation myocardial infarction (STEMI) is the most severe form of IHD, affecting all layers of the heart muscle. One of the diagnostic criteria for endothelial dysfunction in myocardial infarction is the level of sE-selectin, a cell adhesion molecule that recruits neutrophils and induces neutrophil inflammation. The aim of this study is to investigate intronic polymorphisms rs5353, rs3917412 and rs1534904 of the E-selectin coding gene SELE in patients with STEMI. We have analyzed a group of patients with STEMI (n = 74) and a population sample of Tomsk (n = 136) as the control group. The frequencies of the rs5353 genotypes in the SELE gene have shown statistically significant differences between patients and the control sample (p = 0.004). The CC genotype is a predisposing factor to STEMI (OR = 6.93, CI:95 % (1.84-26.04), χ2 = 8.69, p = 0.002). The analyzed markers were not studied previously in cardiovascular diseases (CVDs) and were rarely involved in association studies at all; there is no information on these SNPs in the leading databases. At the same time, all three variants, according to the RegulomeDB classification, belong to the functional class 1f, and are highly likely to have regulatory potential relative not only to the SELE gene, but also to other genes in the nearby region. The analysis of the functional significance of the studied markers has shown the presence of a region more extensive than one gene, which is co-regulated by the studied nucleotide substitutions. The association of rs5353 with STEMI identified in this study once again confirms the involvement of the SELE gene in the pathogenesis of CVDs. It is possible that this entire region of the genome may be involved indirectly in the pathogenesis of CVD through the systems of inflammation, immune response and DNA repair.
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