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Published on: June 7, 2016
Loss-of-function polymorphic variants of the human angiotensin II type 1 receptor
Jakob Lerche Hansen1, Stig Haunsø, Mark R Brann
1Laboratory of Molecular Cardiology, The Heart Centre and Copenhagen Heart Arrhythmia Research Centre, Copenhagen University Hospital Section 9312, and the Faculty of Health, University of Copenhagen, Denmark. jlhansen@molheart.dk
Insights
Genomic variations in the angiotensin II type 1 (AT1) receptor influence its function. Specific AT1 receptor polymorphisms lead to altered responses to angiotensin II, impacting blood pressure regulation and cardiovascular disease risk.
Area of Science:
- Cardiovascular Pharmacology
- Molecular Biology
- Genetics
Background:
- The angiotensin II type 1 (AT1) receptor is crucial for blood pressure and fluid homeostasis.
- Interindividual variability in cardiovascular diseases suggests a role for genetic factors, such as AT1 receptor polymorphisms.
- Understanding these variations is key to explaining differences in disease risk and treatment response.
Purpose of the Study:
- To pharmacologically characterize known and putative nonsynonymous variants of the human AT1 receptor.
- To investigate the functional consequences of AT1 receptor genetic polymorphisms on angiotensin II signaling.
Main Methods:
- Pharmacological characterization of seven AT1 receptor variants.
- Functional analysis using receptor selection and amplification technology (R-SAT).
- Assays for phosphatidyl inositol hydrolysis and extracellular signal-regulated kinase activation.
- Radioligand binding studies and cell surface expression analysis.
Main Results:
- Three AT1 receptor variants (AT1-G45R, AT1-F204S, AT1-C289W) showed significantly altered responses to angiotensin II.
- AT1-G45R exhibited no Ang II binding, while AT1-C289W and AT1-F204S showed reduced Ang II potency and efficacy.
- These variants also displayed reduced binding affinity and cell surface expression compared to the wild-type receptor.
Conclusions:
- Polymorphic variations in the human AT1 receptor can lead to loss-of-function phenotypes.
- These functional changes in AT1 receptor variants may explain the molecular basis for variability in AT1 receptor-mediated physiological responses.
- This research provides insight into the genetic underpinnings of cardiovascular disease variability.
Abstract:
The angiotensin II type 1 (AT1) receptor is the primary effector for angiotensin II (Ang II), a key peptide regulator of blood pressure and fluid homeostasis. AT1 receptors are involved in the pathogenesis of several cardiovascular diseases, including hypertension, cardiac hypertrophy, and congestive heart failure, which are characterized by significant interindividual variation in disease risk, progression, and response to pharmacotherapy. Such variation could arise from genomic polymorphisms in the AT1 receptor. To pursue this notion, we have pharmacologically characterized seven known and putative nonsynonymous AT1 receptor variants. Functional analysis using the cell-based assay receptor selection and amplification technology (R-SAT) revealed that three variants (AT1-G45R, AT1-F204S, and AT1-C289W) displayed altered responses to Ang II and other AT1 receptor agonists and antagonists. Agonist responses to Ang II were absent for AT1-G45R and significantly reduced in potency for AT1-C289W (11-fold) and AT1-F204S (57-fold) compared with the wild-type (WT) receptor. AT1-F204S also displayed reduced relative efficacy (57%). Quantitatively similar results were obtained in two additional functional assays, phosphatidyl inositol hydrolysis and extracellular signal-regulated kinase activation. Radioligand binding studies revealed that AT1-G45R failed to bind Ang II, whereas cell surface staining clearly showed that it trafficked to the cell surface. AT1-C289W and AT1-F204S displayed reduced binding affinities of 3- and 5-fold and reduced cell surface expression of 43 and 60% of that observed for the WT receptor, respectively. These data demonstrate that polymorphic variation in the human AT1 receptor induces loss of functional phenotypes, which may constitute the molecular basis of variability of AT1 receptor-mediated physiological responses.
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