Mouse models of Down syndrome: how useful can they be? Comparison of the gene content of human chromosome 21 with orthologous mouse genomic regions

被引:162
作者
Gardiner, K
Fortna, A
Bechtel, L
Davisson, MT
机构
[1] Univ Denver, Eleanor Roosevelt Inst, Denver, CO 80206 USA
[2] Univ Colorado, Hlth Sci Ctr, Dept Biochem & Mol Genet, Denver, CO 80206 USA
[3] Jackson Lab, Bar Harbor, ME 04609 USA
关键词
genomic sequence annotation; sequence conservation; Ts65Dn; spliced EST; nonhuman primate; species-specific;
D O I
10.1016/S0378-1119(03)00769-8
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
With an incidence of approximately 1 in 700 live births, Down syndrome (DS) remains the most common genetic cause of mental retardation. The phenotype is assumed to be due to overexpression of some number of the >300 genes encoded by human chromosome 21. Mouse models, in particular the chromosome 16 segmental trisomies, Ts65Dn and TslCje, are indispensable for DS-related studies of gene-phenotype correlations. Here we compare the updated gene content of the finished sequence of human chromosome 21 (364 genes and putative genes) with the gene content of the homologous mouse genomic regions (291 genes and putative genes) obtained from annotation of the public sector C57B1/6 draft sequence. Annotated genes fall into one of three classes. First, there are 170 highly conserved, human/mouse orthologues. Second, there are 83 minimally conserved, possible orthologues. Included among the conserved and minimally conserved genes are 31 antisense transcripts. Third, there are species-specific genes: 111 spliced human transcripts show no orthologues in the syntenic mouse regions although 13 have homologous sequences elsewhere in the mouse genomic sequence, and 38 spliced mouse transcripts show no identifiable human orthologues. While these species-specific genes are largely based solely on spliced EST data, a majority can be verified in RNA expression experiments. In addition, preliminary data suggest that many human-specific transcripts may represent a novel class of primate-specific genes. Lastly, updated functional annotation of orthologous genes indicates genes encoding components of several cellular pathways are dispersed throughout the orthologous mouse chromosomal regions and are not completely represented in the Down syndrome segmental mouse models. Together, these data point out the potential for existing mouse models to produce extraneous phenotypes and to fail to produce DS-relevant phenotypes. (C) 2003 Elsevier B.V All rights reserved.
引用
收藏
页码:137 / 147
页数:11
相关论文
共 29 条
[1]   Ts65Dn - localization of the translocation breakpoint and trisomic gene content in a mouse model for Down syndrome [J].
Akeson, EC ;
Lambert, JP ;
Narayanswami, S ;
Gardiner, K ;
Bechtel, LJ ;
Davisson, MT .
CYTOGENETICS AND CELL GENETICS, 2001, 93 (3-4) :270-276
[2]   Normalization and subtraction: Two approaches to facilitate gene discovery [J].
Bonaldo, MDF ;
Lennon, G ;
Soares, MB .
GENOME RESEARCH, 1996, 6 (09) :791-806
[3]   Juxtacentromeric region of human chromosome 21:: a boundary between centromeric heterochromatin and euchromatic chromosome arms [J].
Brun, ME ;
Ruault, M ;
Ventura, M ;
Roizès, G ;
De Sario, A .
GENE, 2003, 312 :41-50
[4]   The contribution of 700,000 ORF sequence tags to the definition of the human transcriptome [J].
Camargo, AA ;
Samaia, HPB ;
Dias-Neto, E ;
Simao, DF ;
Migotto, IA ;
Briones, MRS ;
Costa, FF ;
Nagai, MA ;
Verjovski-Almeida, S ;
Zago, MA ;
Andrade, LEC ;
Carrer, H ;
El-Dorry, HFA ;
Espreafico, EM ;
Habr-Gama, A ;
Giannella-Neto, D ;
Goldman, GH ;
Gruber, A ;
Hackel, C ;
Kimura, ET ;
Maciel, RMB ;
Marie, SKN ;
Martins, EAL ;
Nóbrega, MP ;
Paçó-Larson, ML ;
Pardini, MIMC ;
Pereira, GG ;
Pesquero, JB ;
Rodrigues, V ;
Rogatto, SR ;
da Silva, IDCG ;
Sogayar, MC ;
Sonati, MDF ;
Tajara, EH ;
Valentini, SR ;
Alberto, FL ;
Amaral, MEJ ;
Aneas, I ;
Arnaldi, LAT ;
de Assis, AM ;
Bengtson, MH ;
Bergamo, NA ;
Bombonato, V ;
de Camargo, MER ;
Canevari, RA ;
Carraro, DM ;
Cerutti, JM ;
Corrêa, MLC ;
Corrêa, RFR ;
Costa, MCR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (21) :12103-12108
[5]  
DAVISSON MT, 1999, MOUSE MODELS STUDY G, V9, P297
[6]  
Epstein C.J., 1995, METABOLIC MOL BASES, P749
[7]   Genomic sequence analysis tools: a user's guide [J].
Fortna, A ;
Gardiner, K .
TRENDS IN GENETICS, 2001, 17 (03) :158-164
[8]   Annotation of human chromosome 21 for relevance to Down syndrome: Gene structure and expression analysis [J].
Gardiner, K ;
Slavov, D ;
Bechtel, L ;
Davisson, M .
GENOMICS, 2002, 79 (06) :833-843
[9]  
Gitton Y, 2002, NATURE, V420, P586, DOI 10.1038/nature01178
[10]   Genotator: A workbench for sequence annotation [J].
Harris, NL .
GENOME RESEARCH, 1997, 7 (07) :754-762