Large-scale human promoter mapping using CpG islands

被引:214
作者
Ioshikhes, IP [1 ]
Zhang, MQ [1 ]
机构
[1] Cold Spring Harbor Lab, Cold Spring Harbor, NY 11724 USA
关键词
D O I
10.1038/79189
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Vertebrate genomic DNA is generally CpG depleted(1,2), possibly because methylation of cytosines at 80% of CpG dinucleotides results in their frequent mutation to thymine. and thus CpG to TpG dinucleotides(3). There are, however, genomic regions of high G+C content (CpG islands), where the occurrence of CpGs is significantly higher, close to the expected frequency, whereas the methylation concentration is significantly lower than the overall genome(4). CpG islands(5) are longer than 200 bp and have over 50% of G+C content and CpG frequency, at least 0.6 of that statistically expected. Approximately 50% of mammalian gene promoters are associated with one or more CpG islands(6). Although biologists often intuitively use CpG islands for 5' gene identification(7,8). this has not been rigorously quantified(9). We have determined the features that discriminate the promoter-associated and non-associated CpG islands. This led to an effective algorithm for large-scale promoter mapping (with 2kb resolution) with a concentration of false-positive predictions of promoters much lower than previously obtained. Using this algorithm, we correctly discriminated approximately 85% of the CpG islands within an interval (-500 to +1500) around a transcriptional start site (TSS) from those that lie further away from TSSs. We also correctly mapped approximately 93% of the promoters containing CpG islands.
引用
收藏
页码:61 / 63
页数:3
相关论文
共 22 条
[1]  
Antequera F., 1993, Experientia Supplementum (Basel), V64, P169
[2]   NUMBER OF CPG ISLANDS AND GENES IN HUMAN AND MOUSE [J].
ANTEQUERA, F ;
BIRD, A .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (24) :11995-11999
[3]   GAMETIC IMPRINTING IN MAMMALS [J].
BARLOW, DP .
SCIENCE, 1995, 270 (5242) :1610-1613
[4]   DNA hypermethylation in tumorigenesis - epigenetics joins genetics [J].
Baylin, SB ;
Herman, JG .
TRENDS IN GENETICS, 2000, 16 (04) :168-174
[5]   Molecular biology - DNA methylation de novo [J].
Bird, A .
SCIENCE, 1999, 286 (5448) :2287-2288
[6]   DNA METHYLATION AND THE FREQUENCY OF CPG IN ANIMAL DNA [J].
BIRD, AP .
NUCLEIC ACIDS RESEARCH, 1980, 8 (07) :1499-1504
[7]   CPG ISLANDS AND GENES [J].
CROSS, SH ;
BIRD, AP .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1995, 5 (03) :309-314
[8]   Isolation of CpG islands from large genomic clones [J].
Cross, SH ;
Clark, VH ;
Bird, AP .
NUCLEIC ACIDS RESEARCH, 1999, 27 (10) :2099-2107
[9]   PURIFICATION OF CPG ISLANDS USING A METHYLATED DNA-BINDING COLUMN [J].
CROSS, SH ;
CHARLTON, JA ;
NAN, XS ;
BIRD, AP .
NATURE GENETICS, 1994, 6 (03) :236-244
[10]   The DNA sequence of human chromosome 22 [J].
Dunham, I ;
Shimizu, N ;
Roe, BA ;
Chissoe, S ;
Dunham, I ;
Hunt, AR ;
Collins, JE ;
Bruskiewich, R ;
Beare, DM ;
Clamp, M ;
Smink, LJ ;
Ainscough, R ;
Almeida, JP ;
Babbage, A ;
Bagguley, C ;
Balley, J ;
Barlow, K ;
Bates, KN ;
Beasley, O ;
Bird, CP ;
Blakey, S ;
Bridgeman, AM ;
Buck, D ;
Burgess, J ;
Burrill, WD ;
Burton, J ;
Carder, C ;
Carter, NP ;
Chen, Y ;
Clark, G ;
Clegg, SM ;
Cobley, V ;
Cole, CG ;
Collier, RE ;
Connor, RE ;
Conroy, D ;
Corby, N ;
Coville, GJ ;
Cox, AV ;
Davis, J ;
Dawson, E ;
Dhami, PD ;
Dockree, C ;
Dodsworth, SJ ;
Durbin, RM ;
Ellington, A ;
Evans, KL ;
Fey, JM ;
Fleming, K ;
French, L .
NATURE, 1999, 402 (6761) :489-495