Genetic analyses of novel compound heterozygous hypodysfibrinogenemia, Tsukuba I: FGG c.1129+62_65 del AATA and FGG c.1299+4 del A
THROMBOSIS RESEARCH
Authors: Mukai, Saki; Nagata, Kazuhiro; Ikeda, Minami; Arai, Shinpei; Sugano, Mitsutoshi; Honda, Takayuki; Okumura, Nobuo
Abstract
Introduction: Wefound a novel hypodysfibrinogenemia designated Tsukuba I caused by compound heterozygous nucleotide deletionswith FGG c. 1129+ 62_ 65 del AATA and FGG c. 1299+ 4 del A on different alleles. The former was deep in intron 8 of FGG (IVS-8 deletion) and the latter in exon 9 of FGG (Ex-9 deletion), which is translated for the gamma'-chain, but not the.A-chain. AWestern blot analysis of plasma fibrinogen from our patient revealed an aberrant gamma-chain that migrated slightly faster than the normal B beta-chain. Materials andmethods: To clarify the complex genetic mechanismunderlying Tsukuba I's hypodysfibrinogenemia induced by nucleotide deletions in two regions, we generated two minigenes incorporating each deletion region, transfected them into Chinese Hamster Ovary (CHO) cells, and analyzed RT-PCR products. We also established CHO cells producing the recombinant variant fibrinogen,gamma' 409.A (Ex-9 deletion). Results and conclusions: Minigene I incorporating the IVS-8 deletion showed two products: a normal splicing product and the unspliced product. Minigene II incorporating the Ex-9 deletion only produced the unspliced product. The established gamma' 409.A-CHOcells secreted variant fibrinogenmore effectively than normal fibrinogen. Therefore, the aberrant splicing products derived from the IVS-8 deletion cause hypofibrinogenemia most likely due to nonsense-mediated mRNA decay and the partial production of normal.A-and gamma'-chains; moreover, the Ex-9 deletion causes hypodysfibrinogenemia due to the absence of normal.A-and gamma'-chain production (hypofibrinogenemia) and augmented aberrant.'-chain production (dysfibrinogenemia). (C) 2016 Elsevier Ltd. All rights reserved.
Expression and analysis of a split premature tennination codon in FGG responsible for congenital afibrinogenemia: escape from RNA surveillance mechanisms in transfected cells
BLOOD
Authors: Neerman-Arbez, M; Germanos-Haddad, M; Tzanidakis, K; Vu, D; Deutsch, S; David, A; Morris, MA; de Moerloose, P
Abstract
Congenital afibrinogenemia, the most severe form of fibrinogen deficiency, is characterized by the complete absence of fibrinogen. The disease is caused by mutations in 1 of the 3 fibrinogen genes FGG, FGA, and FGB, clustered on the long arm of human chromosome 4. The majority of cases are due to null mutations in the FGA gene although one would expect the 3 genes to be equally implicated. However, most patients studied so far are white, and therefore the identification of causative mutations in non-European families is necessary to establish if this finding holds true In all ethnic groups. In this study, we report the identification of a novel nonsense mutation (Arg134Xaa) in the FGG gene responsible for congenital afibrinogenemia in 10 patients from Lebanon. Expression studies In COS-7 cells demonstrated that the Arg134Xaa codon, which is encoded by adjacent exons (TG-intron 4-A) affected neither mRNA splicing nor stability, but led to the production of an unstable, severely truncated fibrinogen gamma chain that is not incorporated into a functional fibrinogen hexamer. (C) 2004 by The American Society of Hematology.