Microarray analysis of the Df1 mouse model of the 22q11 deletion syndrome

被引:25
作者
Prescott, K
Ivins, S
Hubank, M
Lindsay, E
Baldini, A
Scambler, P
机构
[1] Inst Child Hlth, Mol Med Unit, London WC1N 1EH, England
[2] Inst Child Hlth, Mol Haematol & Canc Biol Unit, London WC1N 1EH, England
[3] Baylor Coll Med, Dept Pediat Cardiol, Houston, TX 77030 USA
基金
英国惠康基金;
关键词
DiGeorge syndrome; 22q11DS; Tbx1; microarray; haploinsufficiency; gene dosage;
D O I
10.1007/s00439-005-1274-3
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The 22q11 deletion syndrome (22q11DS; DiGeorge/velo-cardio-facial syndrome) primarily affects the structures comprising the pharyngeal arches and pouches resulting in arch artery, cardiac, parathyroid, thymus, palatal and craniofacial defects. Tbx1 haploinsufficiency is thought to account for the main structural anomalies observed in the 22q11DS. The Df1 deleted mouse provides a model for 22q11DS, the deletion reflecting Tbx1 haploinsufficiency in the context of the deletion of 21 adjacent genes. We examined the expression of genes in Df1 embryos at embryonic day (E) 10.5, a stage when the arch-artery phenotype is fully penetrant. Our aims were threefold, with our primary aim to identify differentially regulated genes. Second, we asked whether any of the genes hemizygous in Df1 were dosage compensated to wild type levels, and third we investigated whether genes immediately adjacent to the deletion were dysregulated secondary to a position effect. Utilisation of oligonulceotide arrays allowed us to achieve our aims with 9 out of 12 Df1 deleted genes passing the stringent statistical filtering applied. Several genes involved in vasculogenesis and cardiogenesis were validated by real time quantitative PCR (RTQPCR), including Connexin 45, a gene required for normal vascular development, and Dnajb9 a gene implicated in microvascular differentiation. There was no evidence of any dosage compensation of deleted genes, suggesting this phenomenon is rare, and no dysregulation of genes mapping immediately adjacent to the deletion was detected. However Crkl, another gene implicated in the 22q11DS phenotype, was found to be downregulated by microarray and RTQPCR.
引用
收藏
页码:486 / 496
页数:11
相关论文
共 31 条
[1]   Atypical deletions suggest five 22q11.2 critical regions related to the DiGeorge/velo-cardio-facial syndrome [J].
Amati, F ;
Conti, E ;
Novelli, A ;
Bengala, M ;
Digilio, MC ;
Marino, B ;
Giannotti, A ;
Gabrielli, O ;
Novelli, G ;
Dallapiccola, B .
EUROPEAN JOURNAL OF HUMAN GENETICS, 1999, 7 (08) :903-909
[2]  
ATALIOTIS P, 2004, IN PRESS DEV DYN
[3]   Causes of the phenotype-genotype dissociation in DiGeorge syndrome: clues from mouse models [J].
Botta, A ;
Amati, F ;
Novelli, G .
TRENDS IN GENETICS, 2001, 17 (10) :551-554
[4]   A murine model of Holt-Oram syndrome defines roles of the T-box transcription factor Tbx5 in cardiogenesis and disease [J].
Bruneau, BG ;
Nemer, G ;
Schmitt, JP ;
Charron, F ;
Robitaille, L ;
Caron, S ;
Conner, DA ;
Gessler, M ;
Nemer, M ;
Seidman, CE ;
Seidman, JG .
CELL, 2001, 106 (06) :709-721
[5]   Synthetic matrix metalloproteinase inhibitor decreases early cardiac neural crest migration in chicken embryos [J].
Cai, DH ;
Brauer, PR .
DEVELOPMENTAL DYNAMICS, 2002, 224 (04) :441-449
[6]  
Chiang PW, 2003, GENETICS, V165, P1167
[7]  
Cooper D.N., 2003, NATURE ENCY HUMAN GE
[8]   HIRA, a DiGeorge syndrome candidate gene, is required for cardiac outflow tract septation [J].
Farrell, MJ ;
Stadt, H ;
Wallis, KT ;
Scambler, P ;
Hixon, RL ;
Wolfe, R ;
Leatherbury, L ;
Kirby, ML .
CIRCULATION RESEARCH, 1999, 84 (02) :127-135
[9]   Transcriptional compensation for loss of an allele of the Ini1 tumor suppressor [J].
Guidi, CJ ;
Veal, TM ;
Jones, SN ;
Imbalzano, AN .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (06) :4180-4185
[10]   Mice lacking the homologue of the human 22q11.2 gene CRKL phenocopy neurocristopathies of DiGeorge syndrome [J].
Guris, DL ;
Fantes, J ;
Tara, D ;
Druker, BJ ;
Imamoto, A .
NATURE GENETICS, 2001, 27 (03) :293-298