Molecular screening of ALK1/ACVRL1 and ENG genes in hereditary hemorrhagic telangiectasia in France

被引:101
作者
Lesca, G
Plauchu, H
Coulet, F
Lefebvre, S
Plessis, G
Odent, S
Rivière, S
Leheup, B
Goizet, C
Carette, MF
Cordier, JF
Pinson, S
Soubrier, F
Calender, A
Giraud, S
机构
[1] Hop Edouard Herriot, Genet Lab, F-69003 Lyon, France
[2] Hop Hotel Dieu, Serv Genet, Lyon, France
[3] Hop Tenon, Genet Mol Lab, F-75970 Paris, France
[4] CHU Clemenceau, Serv Genet, Caen, France
[5] Hop Pontchaillou, Serv Genet Med, Rennes, France
[6] Hop St Eloi, Serv Med Interne, Montpellier, France
[7] Hop Enfants Brabois, Serv Genet, Vandoeuvre Les Nancy, France
[8] CHU Pellegrin Enfants, Serv Genet Med, Bordeaux, France
[9] Hop Tenon, Serv Radiol Intervent, F-75970 Paris, France
[10] Hop Cardiovasc & Pneumol Louis Pradel, Serv Pneumol, Bron, France
[11] Univ Lyon 1, F-69365 Lyon, France
关键词
hemorrhagic hereditary telangiectasia; HHT1; HHT2; Osler-Rendu-Weber syndrome; ALK1; ACVRL1; ENG; mutation screening; founder effect;
D O I
10.1002/humu.20017
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Hereditary hemmorrhagic telangiectasia (HHT, or Osler-Rendu-Weber syndrome) is an autosomal dominant disease characterized by arteriovenous malformations, affecting 1 out of 10,000 individuals in France. The disease is caused by mutations of two genes: ENG and ALK1 (ACVRL1). We screened the coding sequence of ENG and ALK1 in 160 unrelated French index cases. A germline mutation was identified in 100 individuals (62.5%). A total of 36 mutations were found in ENG, including three nonsense mutations, 19 small insertions/deletions leading to a frameshift, two inframe deletions, seven missense mutations, and five intronic or splice-site mutations. Of the 36 mutations, 33 were novel mutations. A total of 64 mutations were found in ALK1, including six nonsense mutations, 28 small insertions/deletions leading to a frameshift, one inframe deletion, 27 missense mutations, and two intronic or splice-site mutations. Of the 64 mutations, 27 were novel mutations. Mutations were found in most parts of the coding sequence for both genes, except ALK1 exon 5 and ENG exons 12 to 14. Missense mutations in ALK1 were more frequent in exons 7, 8, and 10. ENG cDNA was sequenced for three intronic mutations: c.689+2T>C produced an abnormal transcript excluding exon 5, c.1103+3-1103+8del activated a cryptic splice site 22 bp upstream, and c. 1428G>A produced two abnormal transcripts, one including intron 11 and the other excluding exon 10. Although most of the mutations were private, some recurrent mutations in ALK1 were of particular interest. Mutation c.1112-1113dupG (p.Gly371fsX391) was found in 17 unrelated individuals sharing a common haplotype, strongly suggesting a founder effect related to the concentration of patients previously reported in a specific French region (Rhone-Alpes). Three missense mutations involved the same codon: c.1231C>T (p.Arg411Trp), c.1232G>C (p.Arg411Pro), and c.1232G>A (p.Arg411Gln) were found in seven, two, and one patients, respectively. Haplotype analysis was in favor of both a founder effect and a mutation hot-spot. (C) 2004 Wiley,Liss, Inc.
引用
收藏
页码:289 / 299
页数:11
相关论文
共 56 条
[1]   Analysis of ALK-1 and endoglin in newborns from families with hereditary hemorrhagic telangiectasia type 2 [J].
Abdalla, SA ;
Pece-Barbara, N ;
Vera, S ;
Tapia, E ;
Paez, E ;
Bernabeu, C ;
Letarte, M .
HUMAN MOLECULAR GENETICS, 2000, 9 (08) :1227-1237
[2]   Disease-associated mutations in conserved residues of ALK-1 kinase domain [J].
Abdalla, SA ;
Cymerman, U ;
Johnson, RM ;
Deber, CM ;
Letarte, M .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2003, 11 (04) :279-287
[3]   Endoglin gene polymorphism as a risk factor for sporadic intracerebral hemorrhage [J].
Alberts, MJ ;
Davis, JP ;
Graffagnino, C ;
McClenny, C ;
DeLong, D ;
Granger, C ;
Herbstreith, MH ;
Boteva, K ;
Marchuk, DA ;
Roses, AD .
ANNALS OF NEUROLOGY, 1997, 41 (05) :683-686
[4]  
Antonarakis SE, 1998, HUM MUTAT, V11, P1
[5]   Endoglin, an ancillary TGFβ receptor, is required for extraembryonic angiogenesis and plays a key role in heart development [J].
Arthur, HM ;
Ure, J ;
Smith, AJH ;
Renforth, G ;
Wilson, DI ;
Torsney, E ;
Charlton, R ;
Parums, DV ;
Jowett, T ;
Marchuk, DA ;
Burn, J ;
Diamond, AG .
DEVELOPMENTAL BIOLOGY, 2000, 217 (01) :42-53
[6]   IDENTIFICATION OF HUMAN ACTIVIN AND TGF-BETA TYPE-I RECEPTORS THAT FORM HETEROMERIC KINASE COMPLEXES WITH TYPE-II RECEPTORS [J].
ATTISANO, L ;
CARCAMO, J ;
VENTURA, F ;
WEIS, FMB ;
MASSAGUE, J ;
WRANA, JL .
CELL, 1993, 75 (04) :671-680
[7]   The activin receptor-like kinase 1 gene: Genomic structure and mutations in hereditary hemorrhagic telangiectasia type 2 [J].
Berg, JN ;
Gallione, CJ ;
Stenzel, TT ;
Johnson, DW ;
Allen, WP ;
Schwartz, CE ;
Jackson, CE ;
Porteous, MEM ;
Marchuk, DA .
AMERICAN JOURNAL OF HUMAN GENETICS, 1997, 61 (01) :60-67
[8]  
BIDEAU A, 1980, J GENET HUM, V28, P127
[9]   EPIDEMIOLOGICAL-STUDY OF RENDU-OSLER DISEASE IN FRANCE - GEOGRAPHICAL-DISTRIBUTION AND FREQUENCY [J].
BIDEAU, A ;
PLAUCHU, H ;
BRUNET, G ;
ROBERT, JM .
POPULATION, 1989, 44 (01) :9-28
[10]   Endoglin expression is reduced in normal vessels but still detectable in arteriovenous malformations of patients with hereditary hemorrhagic telangiectasia type 1 [J].
Bourdeau, A ;
Cymerman, U ;
Paquet, ME ;
Meschino, W ;
McKinnon, WC ;
Guttmacher, AE ;
Becker, L ;
Letarte, M .
AMERICAN JOURNAL OF PATHOLOGY, 2000, 156 (03) :911-923