Congenital heart defects in a novel recurrent 22q11.2 deletion harboring the genes CRKL and MAPK1

被引:32
作者
Breckpot, Jeroen [1 ]
Thienpont, Bernard [1 ]
Bauters, Marijke [2 ]
Tranchevent, Leon-Charles [5 ]
Gewillig, Marc [3 ]
Allegaert, Karel [4 ]
Vermeesch, Joris R. [1 ]
Moreau, Yves [5 ]
Devriendt, Koenraad [1 ]
机构
[1] Univ Hosp Leuven, Ctr Human Genet, B-3000 Louvain, Belgium
[2] Dept Mol & Dev Genet, Human Genome Lab, Louvain, Belgium
[3] Univ Hosp Leuven, Dept Pediat Cardiol, B-3000 Louvain, Belgium
[4] Univ Hosp Leuven, Neonatol Unit, B-3000 Louvain, Belgium
[5] Katholieke Univ Leuven, Bioinformat Grp, Dept Elect Engn, ESAT SCD, Louvain, Belgium
关键词
CRKL; MAPK1; ERK2; 22q11; deletion; LCR22; congenital heart defects; prioritization; LOW COPY REPEATS; DIGEORGE-SYNDROME; DISTAL DELETION; CANDIDATE GENE; TBX1; PRIORITIZATION; MICRODELETION; DISORDERS; PHENOTYPE; MOUSE;
D O I
10.1002/ajmg.a.35217
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The proximal region of the long arm of chromosome 22 is rich in low copy repeats (LCR). Non-allelic homologous recombination (NAHR) between these substrates explains the high prevalence of recurrent rearrangements within this region. We have performed array comparative genomic hybridization in a normally developing girl with growth delay, microcephaly, and truncus arteriosus, and have identified a novel recurrent 22q11 deletion that spans LCR22-4 and partially affects the common 22q11.2 deletion syndrome and the distal 22q11 deletion syndrome. This deletion is atypical as it did not occur by NAHR between any of the major LCRs found on 22q11.2. However, the breakpoint containing regions coincide with highly homologous regions. An identical imbalance was reported previously in a patient with striking phenotypic similarity. Computational gene prioritization methods and biological evidence denote the genes CRKL and MAPK1 as the highest ranking candidates for causing congenital heart disease within the deleted region. (c) 2012 Wiley Periodicals, Inc.
引用
收藏
页码:574 / 580
页数:7
相关论文
共 36 条
[1]   Gene prioritization through genomic data fusion [J].
Aerts, S ;
Lambrechts, D ;
Maity, S ;
Van Loo, P ;
Coessens, B ;
De Smet, F ;
Tranchevent, LC ;
De Moor, B ;
Marynen, P ;
Hassan, B ;
Carmeliet, P ;
Moreau, Y .
NATURE BIOTECHNOLOGY, 2006, 24 (05) :537-544
[2]   Collaboratively charting the gene-to-phenotype network of human congenital heart defects [J].
Barriot, Roland ;
Breckpot, Jeroen ;
Thienpont, Bernard ;
Brohee, Sylvain ;
Van Vooren, Steven ;
Coessens, Bert ;
Tranchevent, Leon-Charles ;
Van Loo, Peter ;
Gewillig, Marc ;
Devriendt, Koenraad ;
Moreau, Yves .
GENOME MEDICINE, 2010, 2
[3]   Clinical features of 78 adults with 22q11 deletion syndrome [J].
Bassett, AS ;
Chow, EWC ;
Husted, J ;
Weksberg, R ;
Caluseriu, O ;
Webb, GD ;
Gatzoulis, MA .
AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2005, 138A (04) :307-313
[4]   22q11.2 distal deletion: A recurrent genomic disorder distinct from DiGeorge syndrome and velocardiofacial syndrome [J].
Ben-Shachar, Shay ;
Ou, Zhishuo ;
Shaw, Chad A. ;
Belmont, John W. ;
Patel, Millan S. ;
Hummel, Marybeth ;
Amato, Stephen ;
Tartaglia, Nicole ;
Berg, Jonathan ;
Sutton, V. Reid ;
Lalani, Seema R. ;
Chinault, A. Craig ;
Cheung, Sau W. ;
Lupski, James R. ;
Patel, Ankita .
AMERICAN JOURNAL OF HUMAN GENETICS, 2008, 82 (01) :214-221
[5]   High-Resolution Genomic Arrays Identify CNVs that Phenocopy the Chromosome 22q11.2 Deletion Syndrome [J].
Busse, Tracy ;
Graham, John M., Jr. ;
Feldman, Gerald ;
Perin, Juan ;
Catherwood, Anne ;
Knowlton, Robert ;
Rappaport, Eric F. ;
Emanuel, Beverly ;
Driscoll, Deborah A. ;
Saitta, Sulagna C. .
HUMAN MUTATION, 2011, 32 (01) :91-97
[6]   Molecular definition of 22q11 deletions in 151 velo-cardio-facial syndrome patients [J].
Carlson, C ;
Sirotkin, H ;
Pandita, R ;
Goldberg, R ;
McKie, J ;
Wadey, R ;
Patanjali, SR ;
Weissman, SM ;
AnyaneYeboa, K ;
Warburton, D ;
Scambler, P ;
Shprintzen, R ;
Kucherlapati, R ;
Morrow, BE .
AMERICAN JOURNAL OF HUMAN GENETICS, 1997, 61 (03) :620-629
[7]   A common molecular basis for rearrangement disorders on chromosome 22q11 [J].
Edelmann, L ;
Pandita, RK ;
Spiteri, E ;
Funke, B ;
Goldberg, R ;
Palanisamy, N ;
Chaganti, RSK ;
Magenis, E ;
Shprintzen, RJ ;
Morrow, BE .
HUMAN MOLECULAR GENETICS, 1999, 8 (07) :1157-1167
[8]   Microduplication 22q11.2, an emerging syndrome: Clinical, cytogenetic, and molecular analysis of thirteen patients [J].
Ensenauer, RE ;
Adeyinka, A ;
Flynn, HC ;
Michels, VV ;
Lindor, NM ;
Dawson, DB ;
Thorland, EC ;
Lorentz, CP ;
Goldstein, JL ;
McDonald, MT ;
Smith, WE ;
Simon-Fayard, E ;
Alexander, AA ;
Kulharya, AS ;
Ketterling, RP ;
Clark, RD ;
Jalal, SM .
AMERICAN JOURNAL OF HUMAN GENETICS, 2003, 73 (05) :1027-1040
[9]   A novel atypical 22q11.2 distal deletion in father and son [J].
Garcia-Minaur, S. ;
Fantes, J. ;
Murray, R. S. ;
Porteous, M. E. M. ;
Strain, L. ;
Burns, J. E. ;
Stephen, J. ;
Warner, J. P. .
JOURNAL OF MEDICAL GENETICS, 2002, 39 (10)
[10]   Dose-dependent interaction of Tbx1 and Crkl and locally aberrant RA signaling in a model of del22q11 syndrome [J].
Guris, DL ;
Duester, G ;
Papaioannou, VE ;
Imamoto, A .
DEVELOPMENTAL CELL, 2006, 10 (01) :81-92