Intronic mutations outside of Alu-repeat-rich domains of the LDL receptor gene are a cause of familial hypercholesterolemia

被引:81
作者
Amsellem, S
Briffaut, D
Carrié, A
Rabès, JP
Girardet, JP
Fredenrich, A
Moulin, P
Krempf, M
Reznik, Y
Vialettes, B
de Gennes, JL
Brukert, E
Benlian, P
机构
[1] Hop St Antoine, Lab Commun Biol Mol, APHP, Dept Biochem & Mol Biol, F-75012 Paris, France
[2] Hop La Pitie Salpetriere, APHP, Dept Biochem, F-75651 Paris, France
[3] Hop Ambroise Pare, APHP, Dept Biochem, F-92104 Boulogne, France
[4] Hop Trousseau, APHP, Dept Pediat, F-75571 Paris, France
[5] Pasteur Hosp, Dept Metab Dis, Nice, France
[6] Antiquaille Hosp, Dept Metab Dis, Lyon, France
[7] Hop Hotel Dieu, Dept Metab Dis, Nantes, France
[8] Cote Nacre Hosp, Dept Metab Dis, Caen, France
[9] Hop St Marguerite, Dept Metab Dis, Marseille, France
[10] Hop La Pitie Salpetriere, APHP, Dept Metab Dis, F-75651 Paris, France
关键词
D O I
10.1007/s00439-002-0813-4
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Familial hypercholesterolemia (FH). a frequent monogenic condition complicated by premature cardiovascular disease, is characterized by high allelic heterogeneity at the low-density lipoprotein receptor (LDLR) locus. Despite more than a decade of genetic testing, knowledge about intronic disease-causing mutations has remained limited because of lack of available genomic sequences. Based on the finding from bioinformatic analysis that Alu repeats represent 85% of LDLR intronic sequences outside exon-intron junctions, we designed a strategy to improve the exploration of genomic regions in the vicinity of exons in 110 FH subjects from an admixed population. In the first group of 42 patients of negative mutation carriers, as previously established by former screening strategies (denaturing gradient get electrophoresis, DNA sequencing with former primers overlapping splice-sites, Southern Blotting), about half (n=22) were found to be carriers of at least one heterozygous mutation. Among a second group of 68 newly recruited patients, 27% of mutation carriers (n=37) had a splicing regulatory mutation. Overall, out of the 54 mutations identified, 13 were intronic. and 18 were novel, out of which nearly half were intronic. Two novel intronic mutations (IVS8-10G-->A within the polypyrimidine tract and IVS7+ 10G-->A downstream of donor site) might create potential aberrant splice sites according to neural-network computed estimation, contrary to 31 common single nucleotide variations also identified at exon-intron junctions. This new strategy of detecting the most likely disease-causing LDLR mutations outside of Alu-rich genomic regions reveals that intronic mutations may have a greater impact than previously reported on the molecular basis of FH.
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页码:501 / 510
页数:10
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