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Updated: Jun 5, 2025

Comprehensive Analysis of Procoagulant Platelets Exhibiting Features of Necrosis, Apoptosis and Platelet Activation
Published on: May 23, 2025
Loss of protein C vs protein S results in discrepant thrombotic phenotypes
Chia-Jui Ku1, Xinge Yu1, Queena Y Zhao1
1Department of Pediatrics, University of Michigan, Ann Arbor, MI.
Insights
This study reveals distinct phenotypes between protein C (PC) and protein S (PS) deficiency in zebrafish, indicating potential clinical differences in thrombosis patients. Zebrafish models highlight survival and cardiovascular differences in PC deficiency versus PS deficiency.
Area of Science:
- Coagulation and Thrombosis Biology
- Genetics and Genomics
- Inflammation and Immunology
Background:
- Venous thrombosis is a major cause of illness and death.
- Deficiencies in protein C (PC) and protein S (PS) increase thrombosis risk.
- PC and PS deficiencies are typically considered clinically similar.
Purpose of the Study:
- To investigate potential differences in phenotypes between protein C (PC) and protein S (PS) deficiency.
- To establish zebrafish models for studying PC and PS deficiency in vivo.
- To explore the PS-independent functions of PC.
Main Methods:
- Genome editing was used to create zebrafish knockouts for PROC and PROS1.
- Phenotypic analysis included survival rates, thrombus formation after injury, and thrombosis localization.
- Transcriptomic analysis and gene knockdown identified genetic interactions.
Main Results:
- PROC knockouts showed significantly reduced survival (~70% lethality), unlike PROS1 knockouts.
- Both mutants exhibited reduced thrombus formation upon injury.
- PROC deficiency led to thrombosis in cardiac and venous systems, while PROS1 deficiency caused intracardiac thrombosis.
- PROC mutants displayed altered inflammatory markers and neutrophil migration defects, independent of PROS1.
- Novel genetic interactions of PROC with adgrf7 were identified.
Conclusions:
- Zebrafish models reveal partially discordant phenotypes between PC and PS deficiency.
- Differences in survival and thrombosis localization suggest potential clinical distinctions.
- PC has roles in inflammation independent of PS, offering new avenues for research.
- These findings provide a valuable in vivo model for studying PC and PS functions in thrombosis and inflammation.
Abstract:
Venous thrombosis is a leading cause of morbidity/mortality and associated with deficiencies of the anticoagulant protein C (PC; PROC) and its cofactor, protein S (PS; PROS1). Heterozygous mutations increase the risk of adult-onset thrombosis, whereas homozygous mutations result in pre/neonatal lethal thrombosis. Phenotypes of patients with PC and PS deficiency are generally considered clinically indistinguishable. Here, we generate proc (zebrafish PROC ortholog) and pros1 knockouts through genome editing in zebrafish and uncover partially discordant phenotypes. proc-/- mutants exhibited ∼70% lethality at 1 year of age, whereas pros1-/- survival was unaffected. Induced venous endothelial injury in both mutants revealed reduced occlusive thrombus formation. This is consistent with the consumptive coagulopathy of zebrafish antithrombin 3 knockouts, which also results in spontaneous venous thrombosis. However, proc and pros1 mutants revealed a discrepancy. Although both mutants demonstrated spontaneous thrombosis, proc-/- was localized to the cardiac and venous systems, whereas pros1-/- was intracardiac. Aside from coagulation, PC has been shown to have PS-independent roles in inflammation. proc mutants displayed altered inflammatory markers and defects in neutrophil migration independent of pros1. Transcriptomic analysis and gene knockdown identified novel proc genetic interactions with adgrf7, a G protein-coupled receptor (GPCR) not previously known to be involved in coagulation. In summary, our data reveal differences between PC- and PS-deficient thrombosis, with cardiovascular tissue-specific phenotypes and survival differences, suggesting the possibility of underlying clinical differences in affected patients. This model of complete proc-/- deficiency in an accessible organism will facilitate further in vivo study of these distinctions, as well as PS-dependent and -independent functions of PC.
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