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A novel missense mutation close to the charge-stabilizing system in a patient with congenital factor VII deficiency
Minghua Jiang1, Zhaoyue Wang, Ziqiang Yu
1Jiangsu Institute of Haematology, the First Affiliated Hospital of Soochow University, Key Lab of Thrombosis and Hemostasis of Ministry of Health, 188 Shizi Street, Suzhou, China.
Insights
Congenital factor VII deficiency, a rare bleeding disorder, was studied in a Chinese family. Compound heterozygous mutations in the F7 gene were identified, leading to impaired secretion of the factor VII-Phe190 variant.
Area of Science:
- Genetics
- Hematology
- Molecular Biology
Background:
- Congenital factor VII (FVII) deficiency is a rare, autosomal recessive bleeding disorder with variable clinical presentations and genetic mutations.
- Understanding the molecular basis of FVII deficiency is crucial for diagnosis and potential therapeutic strategies.
Observation:
- A Chinese patient presented with prolonged prothrombin time and low FVII antigen and activity levels.
- Genomic sequencing revealed compound heterozygous mutations in the F7 gene: a splice site mutation (g.15975 G>A) and a novel missense mutation (g.16750 C>T) in exon 8, resulting in a Ser190 to Phe190 amino acid change.
Findings:
- Expression studies demonstrated that the FVII-Phe190 mutant was synthesized and translocated to the endoplasmic reticulum and Golgi apparatus, similar to wild-type FVII.
- However, the FVII-Phe190 mutant exhibited reduced levels in the culture medium, suggesting impaired secretion or increased degradation.
- ELISA and Western blotting confirmed normal synthesis but reduced extracellular levels of the FVII-Phe190 variant.
Implications:
- These findings indicate that compound heterozygous mutations in the F7 gene cause FVII deficiency in this patient.
- The novel FVII-Phe190 mutation impairs the protein's secretion or stability, contributing to the bleeding disorder.
- This study expands the mutational spectrum of FVII deficiency and highlights the importance of investigating protein trafficking and degradation pathways.
Abstract:
Congenital factor VII (FVII) deficiency is a rare autosomal recessive bleeding disorder. Its clinical manifestation and mutational spectrum are highly variable. The purpose of this study was to identify and characterize the mutation causing the FVII deficiency in a Chinese patient and his family. The FVII gene was analyzed by genomic DNA sequencing, and the FVII levels in patient's plasma were measured with an enzyme-linked immunoabsorbent assay (ELISA) and one-stage prothrombin time based method. In addition, the FVII-Phe190 mutant identified in the pedigree was expressed in the HEK293 cells, and the subcellular localization experiments in the Chinese hamster ovary (CHO) cells were performed. The patient had a prolonged prothrombin time and low levels of both FVII antigen and activity, and two heterozygous mutations were identified in F7 gene (NG-009262.1): a g.15975 G>A in the splice receptor site of intron 6 and a novel g.16750 C>T in exon 8 resulting in Ser190 to Phe190 replacement. In expression experiments, the reduced antigen and activity levels of FVII-Phe190 in the culture medium were found, whereas an ELISA and Western blotting analysis of FVII revealed that mutant FVII-Phe190 was synthesized in the cells as the wild-type FVII-Ser190. And FVII-Phe190 was found in endoplasmic reticulum and Golgi apparatus. Compound heterozygous mutations in F7 gene should be responsible for the FVII deficiency in this patient. The FVII-Phe190 can normally be synthesized and transported from endoplasmic reticulum to Golgi apparatus, but degraded or inefficiently secreted.
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