Comparative mapping of the human 22q11 chromosomal region and the orthologous region in mice reveals complex changes in gene organization

被引:79
作者
Puech, A
Saint-Jore, B
Funke, B
Gilbert, DJ
Sirotkin, H
Copeland, NG
Jenkins, NA
Kucherlapati, R
Morrow, B
Skoultchi, AI
机构
[1] Yeshiva Univ Albert Einstein Coll Med, Dept Cell Biol, Bronx, NY 10461 USA
[2] Yeshiva Univ Albert Einstein Coll Med, Dept Mol Genet, Bronx, NY 10461 USA
[3] NCI, Frederick Canc Res & Dev Ctr, ABL Basic Res Program, Mammalian Genet Lab, Frederick, MD 21702 USA
关键词
D O I
10.1073/pnas.94.26.14608
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The region of human chromosome 22q11 is prone to rearrangements. The resulting chromosomal abnormalities are involved in Velo-cardio-facial and DiGeorge syndromes (VCFS and DGS) (deletions), "cat eye" syndrome (duplications), and certain types of tumors (translocations), As a prelude to the development of mouse models for VCFS/DGS by generating targeted deletions in the mouse genome, we examined the organization of genes from human chromosome 22q11 in the mouse, Using genetic linkage analysis and detailed physical mapping, we show that genes from a relatively small region of human 22q11 are distributed on three mouse chromosomes (MMU6, MMU10, and MMU16), Furthermore, although the region corresponding to about 2.5 megabases of the VCFS/DGS critical region is located on mouse chromosome 16, the relative organization of the region is quite different from that in humans, Our results show that the instability of the 22q11 region is not restricted to humans but may have been present throughout evolution, The results also underscore the importance of detailed comparative mapping of genes in mice and humans as a prerequisite for the development of mouse models of human diseases involving chromosomal rearrangements.
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页码:14608 / 14613
页数:6
相关论文
共 61 条
[1]   THE E-SUBUNIT OF VACUOLAR H+-ATPASE LOCALIZES CLOSE TO THE CENTROMERE ON HUMAN-CHROMOSOME 22 [J].
BAUD, V ;
MEARS, AJ ;
LAMOUR, V ;
SCAMPS, C ;
DUNCAN, AMV ;
MCDERMID, HE ;
LIPINSKI, M .
HUMAN MOLECULAR GENETICS, 1994, 3 (02) :335-339
[2]  
BELL CJ, 1995, HUM MOL GENET, V4, P59
[3]  
Biegel JA, 1996, GENE CHROMOSOME CANC, V16, P94, DOI 10.1002/(SICI)1098-2264(199606)16:2<94::AID-GCC3>3.0.CO
[4]  
2-Y
[5]   HIGH-RESOLUTION COMPARATIVE MAPPING OF THE PROXIMAL REGION OF THE MOUSE X-CHROMOSOME [J].
BLAIR, HJ ;
HO, MF ;
MONACO, AP ;
FISHER, S ;
CRAIG, IW ;
BOYD, Y .
GENOMICS, 1995, 28 (02) :305-310
[6]   STRUCTURAL CHARACTERIZATION AND CHROMOSOMAL LOCATION OF THE MOUSE MACROPHAGE-MIGRATION INHIBITORY FACTOR GENE AND PSEUDOGENES [J].
BOZZA, M ;
KOLAKOWSKI, LF ;
JENKINS, NA ;
GILBERT, DJ ;
COPELAND, NG ;
DAVID, JR ;
GERARD, C .
GENOMICS, 1995, 27 (03) :412-419
[7]   CHARACTERIZATION OF THE OPPOSITE-STRAND GENES FROM THE MOUSE BIDIRECTIONALLY TRANSCRIBED HTF9 LOCUS [J].
BRESSAN, A ;
SOMMA, MP ;
LEWIS, J ;
SANTOLAMAZZA, C ;
COPELAND, NG ;
GILBERT, DJ ;
JENKINS, NA ;
LAVIA, P .
GENE, 1991, 103 (02) :201-209
[8]   Localization of the human gene for macrophage migration inhibitory factor (MIF) to chromosome 22q11.2 [J].
Budarf, M ;
McDonald, T ;
Sellinger, B ;
Kozak, C ;
Graham, C ;
Wistow, G .
GENOMICS, 1997, 39 (02) :235-236
[9]   Regional localization of over 300 loci on human chromosome 22 using a somatic cell hybrid mapping panel [J].
Budarf, ML ;
Eckman, B ;
Michaud, D ;
McDonald, T ;
Gavigan, S ;
Buetow, KH ;
Tatsumura, Y ;
Liu, ZG ;
Hilliard, C ;
Driscoll, D ;
Goldmuntz, E ;
Meese, E ;
Zwarthoff, EC ;
Williams, S ;
McDermid, H ;
Dumanski, JP ;
Biegel, J ;
Bell, CJ ;
Emanuel, BS .
GENOMICS, 1996, 35 (02) :275-288
[10]  
Carlson C, 1997, AM J HUM GENET, V60, P851