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Published on: June 3, 2014
Coronary Artery Disease Risk Variant Dampens the Expression of CALCRL by Reducing HSF Binding to Shear Stress
Ilakya Selvarajan1, Miika Kiema1, Ru-Ting Huang2
1A.I. Virtanen Institute for Molecular Sciences (I.S., M.K., T.Ö., K.Õ., M.G., A.R., K.M., A.T., J.P.L., M.U.K.), University of Eastern Finland, Kuopio.
Insights
Coronary artery disease risk SNPs regulate CALCRL gene expression in endothelial cells via an HSF1-dependent enhancer. This finding advances understanding of genetic regulation in shear stress responses.
Area of Science:
- Molecular Biology
- Genetics
- Cardiovascular Research
Background:
- The calcitonin receptor-like (CALCRL) protein mediates endothelial responses to fluid shear stress.
- Genetic variations linked to coronary artery disease (CAD) are associated with CALCRL regulation.
Purpose of the Study:
- To functionally characterize noncoding regulatory elements associated with CAD risk single-nucleotide polymorphisms (SNPs).
- To investigate the role of these elements in regulating CALCRL gene expression in endothelial cells.
Main Methods:
- Integrative analysis including statistical, RNA-seq, and epigenetic (ATAC-seq, ChIP-qPCR) methods.
- Luciferase reporter assays and gene/enhancer perturbations (siRNA, CRISPR/Cas9) in human aortic endothelial cells.
Main Results:
- A regulatory element harboring the rs880890 SNP showed significant enhancer activity and allelic bias, favoring the A allele under shear stress.
- HSF1 binding and activity were crucial for enhancer function and CALCRL expression; disturbed flow reduced HSF1 binding.
- CALCRL knockdown affected endothelial cell proliferation, tube formation, and NO production, impacting signaling pathways like eNOS and APLN.
Conclusions:
- An endothelial-specific, HSF1-regulated transcriptional enhancer controls CALCRL expression.
- Understanding CALCRL gene regulation and SNP modulation offers insights into genetic control of shear stress responses.
Background:
CALCRL (calcitonin receptor-like) protein is an important mediator of the endothelial fluid shear stress response, which is associated with the genetic risk of coronary artery disease. In this study, we functionally characterized the noncoding regulatory elements carrying coronary artery disease that risks single-nucleotide polymorphisms and studied their role in the regulation of CALCRL expression in endothelial cells.
Methods:
To functionally characterize the coronary artery disease single-nucleotide polymorphisms harbored around the gene CALCRL, we applied an integrative approach encompassing statistical, transcriptional (RNA-seq), and epigenetic (ATAC-seq [transposase-accessible chromatin with sequencing], chromatin immunoprecipitation assay-quantitative polymerase chain reaction, and electromobility shift assay) analyses, alongside luciferase reporter assays, and targeted gene and enhancer perturbations (siRNA and clustered regularly interspaced short palindromic repeats/clustered regularly interspaced short palindromic repeat-associated 9) in human aortic endothelial cells.
Results:
We demonstrate that the regulatory element harboring rs880890 exhibits high enhancer activity and shows significant allelic bias. The A allele was favored over the G allele, particularly under shear stress conditions, mediated through alterations in the HSF1 (heat shock factor 1) motif and binding. CRISPR deletion of rs880890 enhancer resulted in downregulation of CALCRL expression, whereas HSF1 knockdown resulted in a significant decrease in rs880890-enhancer activity and CALCRL expression. A significant decrease in HSF1 binding to the enhancer region in endothelial cells was observed under disturbed flow compared with unidirectional flow. CALCRL knockdown and variant perturbation experiments indicated the role of CALCRL in mediating eNOS (endothelial nitric oxide synthase), APLN (apelin), angiopoietin, prostaglandins, and EDN1 (endothelin-1) signaling pathways leading to a decrease in cell proliferation, tube formation, and NO production.
Conclusions:
Overall, our results demonstrate the existence of an endothelial-specific HSF (heat shock factor)-regulated transcriptional enhancer that mediates CALCRL expression. A better understanding of CALCRL gene regulation and the role of single-nucleotide polymorphisms in the modulation of CALCRL expression could provide important steps toward understanding the genetic regulation of shear stress signaling responses.
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