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Published on: May 24, 2024
Protease-Activated Receptor 4 Variant p.Tyr157Cys Reduces Platelet Functional Responses and Alters Receptor
Jane E Norman1, Margaret R Cunningham1, Matthew L Jones1
1From the School of Clinical Sciences (J.E.N., M.E.W., S.K.W., A.D.M.), School of Cellular and Molecular Medicine (M.L.J., A.D.M.), School of Biochemistry (R.B.S.), and School of Physiology and Pharmacology (S.J.M.), University of Bristol, Bristol, United Kingdom; and Strathclyde Institute of Pharmacy and Biomedical Sciences, University of Strathclyde, Glasgow, United Kingdom (M.R.C.).
Objective:
Protease-activated receptor 4 (PAR4) is a key regulator of platelet reactivity and is encoded by F2RL3, which has abundant rare missense variants. We aimed to provide proof of principle that rare F2LR3 variants potentially affect platelet reactivity and responsiveness to PAR1 antagonist drugs and to explore underlying molecular mechanisms.
Approach And Results:
We identified 6 rare F2RL3 missense variants in 236 cardiac patients, of which the variant causing a tyrosine 157 to cysteine substitution (Y157C) was predicted computationally to have the greatest effect on PAR4 structure. Y157C platelets from 3 cases showed reduced responses to PAR4-activating peptide and to α-thrombin compared with controls, but no reduction in responses to PAR1-activating peptide. Pretreatment with the PAR1 antagonist vorapaxar caused lower residual α-thrombin responses in Y157C platelets than in controls, indicating greater platelet inhibition. HEK293 cells transfected with a PAR4 Y157C expression construct had reduced PAR4 functional responses, unchanged total PAR4 expression but reduced surface expression. PAR4 Y157C was partially retained in the endoplasmic reticulum and displayed an expression pattern consistent with defective N-glycosylation. Mutagenesis of Y322, which is the putative hydrogen bond partner of Y157, also reduced PAR4 surface expression in HEK293 cells.
Conclusions:
Reduced PAR4 responses associated with Y157C result from aberrant anterograde surface receptor trafficking, in part, because of disrupted intramolecular hydrogen bonding. Characterization of PAR4 Y157C establishes that rare F2RL3 variants have the potential to markedly alter platelet PAR4 reactivity particularly after exposure to therapeutic PAR1 antagonists.
Insights
Rare variants in the F2RL3 gene, encoding protease-activated receptor 4 (PAR4), can significantly alter platelet reactivity. The Y157C variant reduces PAR4 function, impacting responses to antiplatelet drugs.
Area of Science:
- Cardiovascular biology
- Molecular genetics
- Platelet physiology
Background:
- Protease-activated receptor 4 (PAR4), encoded by F2RL3, is crucial for platelet activation.
- F2RL3 harbors numerous rare missense variants, whose functional impact remains largely unexplored.
- Understanding these variants is key to personalized antiplatelet therapy.
Purpose of the Study:
- To investigate if rare F2RL3 variants affect platelet reactivity.
- To determine if these variants alter responses to PAR1 antagonist drugs.
- To elucidate the molecular mechanisms behind these potential alterations.
Main Methods:
- Identified rare F2RL3 missense variants in cardiac patients.
- Utilized computational prediction for variant impact assessment (Y157C).
- Assessed platelet responses to agonists and PAR1 antagonists in patients and cell models.
Main Results:
- Identified 6 rare F2RL3 variants, with Y157C showing the most predicted structural impact.
- Y157C platelets exhibited reduced responses to PAR4 agonists and enhanced inhibition by vorapaxar (a PAR1 antagonist).
- Cell-based assays revealed PAR4 Y157C causes reduced surface expression due to impaired trafficking and N-glycosylation.
Conclusions:
- The Y157C variant impairs PAR4 receptor function by disrupting trafficking and hydrogen bonding.
- Rare F2RL3 variants can significantly modify platelet PAR4 reactivity.
- These findings highlight the potential clinical relevance of rare variants in F2RL3, especially concerning antiplatelet drug efficacy.
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