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Published on: July 18, 2014
Mutational Epidemiology of Congenital Fibrinogen Disorders
Alessandro Casini1, Marc Blondon1, Veronique Tintillier2
1Division of Angiology and Haemostasis, Faculty of Medicine, University Hospitals of Geneva, University of Geneva, Geneva, Switzerland.
Insights
Congenital fibrinogen disorders (CFDs) have complex molecular epidemiology. A new stepwise genetic screening strategy efficiently identifies causative mutations in FGA, FGB, and FGG genes, aiding diagnosis.
Area of Science:
- Genetics
- Molecular Biology
- Hematology
Background:
- Congenital fibrinogen disorders (CFDs) result from numerous mutations in FGA, FGB, or FGG genes.
- The molecular epidemiology of CFDs is not well characterized.
Purpose of the Study:
- To evaluate the molecular epidemiology of CFDs.
- To develop an efficient genotyping strategy for CFD diagnosis.
Main Methods:
- Analyzed genetic data from 266 unrelated CFD patients and 1,142 from a CFD database.
- Developed and prospectively tested a stepwise genetic screening strategy on 32 CFD probands.
Main Results:
- Identified 345 mutated alleles, with distinct mutation types correlating with specific CFD phenotypes (afibrinogenemia, hypofibrinogenemia, dysfibrinogenemia).
- Prevalence of hotspot mutations observed in both quantitative and qualitative disorders.
- The developed screening strategy identified approximately 80% of mutated alleles, including 15 novel mutations.
Conclusions:
- The molecular epidemiology of CFDs is complex and influenced by specific gene mutations.
- The proposed stepwise genetic screening strategy is efficient for identifying causative mutations in a minimal number of exons.
Background:
Numerous mutations in FGA, FGB or FGG lead to congenital fibrinogen disorders (CFDs), but their epidemiology is not well characterized. The aim of this study was to evaluate the molecular epidemiology of CFD and to develop a genotyping strategy.
Methods:
Genetic data from 266 unrelated CFD patients genotyped at our laboratory and from a CFD open access database (n = 1,142) were evaluated. We developed a step-wise screening strategy for the molecular diagnosis of CFD and prospectively tested this strategy on 32 consecutive CFD probands.
Results:
We identified 345 mutated alleles overall, among 187 heterozygous, 63 homozygous and 16 compound heterozygous individuals. Afibrinogenemia was almost always caused by null mutations (98.6%), mainly in FGA (85%). Hypofibrinogenemia was mainly caused by missense mutations of FGB or FGG (54.2%). Dysfibrinogenemia was almost always caused by heterozygous missense mutations (99.3%) in FGA and FGG. Hotspot mutations were prevalent among quantitative (33.1%) and qualitative fibrinogen disorders (71.1%). The mutational cluster at our laboratory was similar with that reported in the CFD open access database. The proposed step-wise genetic screening strategy proved efficient in both the development and validation samples for CFD: the screening of FGA exons 2, 4, 5 and FGG exon 8 and search for the 11 kb deletion of FGA led to the identification of approximately 80% of mutated alleles, including 15 new mutations.
Conclusion:
The described molecular epidemiology of CFD is complex. The proposed step-wise genetic screening strategy may provide an efficient way to identify causative mutations analysing a minimal number of exons.
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