Molecular basis of SERPINC1 mutations in Japanese patients with antithrombin deficiency
Shogo Tamura1, Erika Hashimoto1, Nobuaki Suzuki2
1Department of Pathophysiological Laboratory Science, Nagoya University Graduate School of Medicine, Nagoya, Japan.
Insights
Congenital antithrombin (AT) deficiency in Japanese patients involves diverse SERPINC1 gene defects, including novel mutations and large deletions, increasing venous thromboembolism risk. Understanding these genetic variations is crucial for managing thrombophilia.
Area of Science:
- Genetics
- Molecular Biology
- Hematology
Background:
- Congenital antithrombin (AT) deficiency is an inherited thrombophilia caused by SERPINC1 gene defects.
- This condition significantly elevates the risk of recurrent venous thromboembolism (VTE).
Purpose of the Study:
- To investigate SERPINC1 gene defects in Japanese patients diagnosed with congenital AT deficiency.
- To characterize the spectrum of mutations and genetic alterations associated with VTE in this population.
Main Methods:
- Direct sequencing of SERPINC1 exons and exon-intron junctions.
- Multiplex ligation-dependent probe amplification (MLPA) for copy number analysis.
- Exontrap assays to investigate mRNA splicing abnormalities.
Main Results:
- Identified 19 distinct SERPINC1 abnormalities in 21 Japanese patients, including 8 novel mutations.
- Detected various mutation types: missense, nonsense, splice-site, insertions, deletions, and large genomic deletions.
- Large deletions involved Alu-mediated and non-Alu-mediated rearrangements, potentially explained by the FoSTeS model.
Conclusions:
- A wide array of SERPINC1 defects underlies congenital AT deficiency in Japanese patients.
- Mutations range from single nucleotide variants to complex genomic rearrangements.
- Characterizing these SERPINC1 defects is essential for understanding VTE risk and management.
Background:
Congenital antithrombin (AT) deficiency, which arises from various SERPINC1 defects, is an autosomal-dominant thrombophilic disorder associated with a high risk of recurrent venous thromboembolism.
Patients/Methods:
We investigated SERPINC1 defects in Japanese patients with congenital AT deficiency who developed venous thromboembolism or had a family history of deep vein thrombosis. We analyzed the full DNA sequences of SERPINC1 exons and exon-intron junctions by PCR-mediated direct sequencing. If no mutation was found, multiplex ligation-dependent probe amplification (MLPA) was conducted for the relative quantification of the copy number of all exons in SERPINC1. If splice-site mutations were detected, mRNA splicing abnormalities were further investigated using an in vitro cell-based exontrap assay.
Results:
We identified 19 different SERPINC1 abnormalities, including 8 novel mutations, in 21 Japanese patients with AT deficiency. These abnormalities were distributed as follows: 9 missense mutations (42.9%), 3 nonsense mutations (14.3%), 1 splice-site mutation (4.8%), 2 small insertions (9.5%), 2 deletion mutations (9.5%) and 4 large deletions (19.0%). Cases with large deletions of SERPINC1 included Alu-mediated gene rearrangements and non-Alu-mediated complex gene rearrangements; the latter could conceivably be explained using the fork stalling and template switching (FoSTeS) model.
Conclusions:
We identified a variety of SERPINC1 defects in Japanese patients with AT deficiency. The SERPINC1 mutations detected in patients with type I AT deficiency included single nucleotide missense or nonsense mutations, small intragenic insertions or deletions, and large genomic structural deletions. Large deletions of SERPINC1 were caused by various recurrent or non-recurrent complex genomic rearrangement mutations.
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