In situ hybridization and chromosome banding in mammalian species

被引:31
作者
Chaves, R
Adega, F
Santos, S
Guedes-Pinto, H
Heslop-Harrison, JS [1 ]
机构
[1] Univ Leicester, Dept Biol, Leicester LE1 7RH, Leics, England
[2] Univ Trasos Montes & Alto Douro, Dept Genet & Biotechnol, ICETA, Vila Real, Portugal
关键词
D O I
10.1159/000063020
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Chromosome banding is often required in conjunction with fluorescent in situ hybridization of labelled probes for chromosome painting, satellite DNA and low-copy sequences to allow identification of chromosomes and simultaneous probe localization. Here, we present a method that reveals both patterns with only one observation step. The band pattern is produced by restrict ion-enzyme digestion of chromosomes, followed by fixation with paraformaldehyde in PBS, a short chromosome denaturation step in hybridization solution, and then standard in situ hybridization, washing and detection protocols. Using a range of different mammalian species, chromosome-banding patterns were immediately recognizable, although synchronisation procedures normally required for high-resolution G-banding were not needed. Unlike other methods available, only one round of observation is required using a conventional fluorescence microscope, the method works without modification in many species, and in situ hybridization is not used for chromosome identification (allowing multiple targets and minimizing background). The banding pattern is probably generated by a combination of DNA dissolution and heterochromatin reorganisation after enzyme digestion, followed by paraformaldehyde fixation of the new chromatin structure and incomplete denaturation. The method is of widespread utility in comparative genomics and genome organization programmes. Copyright (C)2002 S.KargerAG, Basel.
引用
收藏
页码:113 / 116
页数:4
相关论文
共 15 条
[1]   Centromeric heterochromatin in the cattle rob(1;29) translocation:: α-satellite I sequences, in-situ MspI digestion patterns, chromomycin staining and C-bands [J].
Chaves, R ;
Heslop-Harrison, JS ;
Guedes-Pinto, H .
CHROMOSOME RESEARCH, 2000, 8 (07) :621-626
[2]   The complex hybrid zone between the Abisko and Sidensjo chromosome races of Sorex araneus in Sweden [J].
Fredga, K ;
Narain, Y .
BIOLOGICAL JOURNAL OF THE LINNEAN SOCIETY, 2000, 70 (02) :285-307
[3]  
GONSALVES J, 1997, CHROM TODAY, V12, P23
[4]  
GOULD DC, 1976, J CELL SCI, V21, P303
[5]  
*ISCN, 1995, INT SYST HUM CYT GEN
[6]   Telomeric (TTAGGG)n sequences are associated with nucleolus organizer regions (NORs) in the wood lemming [J].
Liu, WS ;
Fredga, K .
CHROMOSOME RESEARCH, 1999, 7 (03) :235-240
[7]   XY sex reversal in the wood lemming is associated with deletion of Xp21-23 as revealed by chromosome microdissection and fluorescence in situ hybridization [J].
Liu, WS ;
Eriksson, L ;
Fredga, K .
CHROMOSOME RESEARCH, 1998, 6 (05) :379-383
[8]   CHROMOSOME LOCALIZATION OF HIGHLY REPETITIVE HUMAN DNAS AND AMPLIFIED RIBOSOMAL DNA WITH RESTRICTION ENZYMES [J].
MILLER, DA ;
CHOI, YC ;
MILLER, OJ .
SCIENCE, 1983, 219 (4583) :395-397
[9]   Toward a multicolor chromosome bar code for the entire human karyotype by fluorescence in situ hybridization [J].
Muller, S ;
Rocchi, M ;
FergusonSmith, MA ;
Wienberg, J .
HUMAN GENETICS, 1997, 100 (02) :271-278
[10]   The efficiency of in-situ hybridization on human chromosomes with alphoid DNAs is enhanced by previous digestion with AluI and TaqI [J].
Nieddu, M ;
Rossino, R ;
Pichiri, G ;
Rocchi, M ;
Setzu, MD ;
Mezzanotte, R .
CHROMOSOME RESEARCH, 1999, 7 (08) :593-602