Biased Gene Conversion and the Evolution of Mammalian Genomic Landscapes

被引:499
作者
Duret, Laurent [1 ]
Galtier, Nicolas [2 ]
机构
[1] Univ Lyon 1, CNRS, UMR5558, Lab Biometrie & Biol Evolut, F-69622 Villeurbanne, France
[2] Univ Montpellier 2, CNRS, UMR5554, Inst Sci Evolut, F-34095 Montpellier, France
关键词
isochores; recombination; selection; neutral evolution; mutation; comparative genomics; GC-CONTENT EVOLUTION; SCALE RECOMBINATION PATTERNS; SYNONYMOUS CODON USAGE; BASE COMPOSITION; MEIOTIC RECOMBINATION; NONCODING SEQUENCES; COMPOSITIONAL PROPERTIES; NUCLEOTIDE SUBSTITUTION; MONODELPHIS-DOMESTICA; ISOCHORE STRUCTURE;
D O I
10.1146/annurev-genom-082908-150001
中图分类号
Q3 [遗传学];
学科分类号
071007 [遗传学];
摘要
Recombination is typically thought of as a symmetrical process resulting in large-scale reciprocal genetic exchanges between homologous chromosomes. Recombination events, however, are also accompanied by short-scale, unidirectional exchanges known as gene conversion in the neighborhood of the initiating double-strand break. A large body of evidence suggests that gene conversion is GC-biased in many eukaryotes, including mammals and human. AT/GC heterozygotes produce more GC- than AT-gametes, thus conferring a population advantage to GC-alleles in high-recombining regions. This apparently unimportant feature of our molecular machinery has major evolutionary consequences. Structurally, GC-biased gene conversion explains the spatial distribution of GC-content in mammalian genomes-the so-called isochore structure. Functionally, GC-biased gene conversion promotes the segregation and fixation of deleterious AT -> GC mutations, thus increasing our genomic mutation load. Here we review the recent evidence for a GC-biased gene conversion process in mammals, and its consequences for genomic landscapes, molecular evolution, and human functional genomics.
引用
收藏
页码:285 / 311
页数:27
相关论文
共 147 条
[1]
AISSANI B, 1991, J MOL EVOL, V32, P493, DOI 10.1007/BF02102651
[2]
Codon bias evolution in Drosophila.: Population genetics of mutation-selection drift [J].
Akashi, H .
GENE, 1997, 205 (1-2) :269-278
[3]
A haplotype map of the human genome [J].
Altshuler, D ;
Brooks, LD ;
Chakravarti, A ;
Collins, FS ;
Daly, MJ ;
Donnelly, P ;
Gibbs, RA ;
Belmont, JW ;
Boudreau, A ;
Leal, SM ;
Hardenbol, P ;
Pasternak, S ;
Wheeler, DA ;
Willis, TD ;
Yu, FL ;
Yang, HM ;
Zeng, CQ ;
Gao, Y ;
Hu, HR ;
Hu, WT ;
Li, CH ;
Lin, W ;
Liu, SQ ;
Pan, H ;
Tang, XL ;
Wang, J ;
Wang, W ;
Yu, J ;
Zhang, B ;
Zhang, QR ;
Zhao, HB ;
Zhao, H ;
Zhou, J ;
Gabriel, SB ;
Barry, R ;
Blumenstiel, B ;
Camargo, A ;
Defelice, M ;
Faggart, M ;
Goyette, M ;
Gupta, S ;
Moore, J ;
Nguyen, H ;
Onofrio, RC ;
Parkin, M ;
Roy, J ;
Stahl, E ;
Winchester, E ;
Ziaugra, L ;
Shen, Y .
NATURE, 2005, 437 (7063) :1299-1320
[4]
Distinct changes of genomic biases in nucleotide substitution at the time of mammalian radiation [J].
Arndt, PF ;
Petrov, DA ;
Hwa, T .
MOLECULAR BIOLOGY AND EVOLUTION, 2003, 20 (11) :1887-1896
[5]
Substantial regional variation in substitution rates in the human genome: Importance of GC content, gene density, and telomere-specific effects [J].
Arndt, PF ;
Hwa, T ;
Petrov, DA .
JOURNAL OF MOLECULAR EVOLUTION, 2005, 60 (06) :748-U28
[6]
Gene conversion drives the evolution of HINTW, an ampliconic gene on the female-specific avian W chromosome [J].
Backström, N ;
Ceplitis, H ;
Berlin, S ;
Ellegren, H .
MOLECULAR BIOLOGY AND EVOLUTION, 2005, 22 (10) :1992-1999
[7]
The decline of isochores in mammals: An assessment of the GC content variation along the mammalian phylogeny [J].
Belle, EMS ;
Duret, L ;
Galtier, N ;
Eyre-Walker, A .
JOURNAL OF MOLECULAR EVOLUTION, 2004, 58 (06) :653-660
[8]
Analysis of the phylogenetic distribution of isochores in vertebrates and a test of the thermal stability hypothesis [J].
Belle, EMS ;
Smith, N ;
Eyre-Walker, A .
JOURNAL OF MOLECULAR EVOLUTION, 2002, 55 (03) :356-363
[9]
BIASED CONVERSION AS THE PRIMARY FUNCTION OF RECOMBINATION [J].
BENGTSSON, BO .
GENETICS RESEARCH, 1986, 47 (01) :77-80
[10]
Distinctive structures between chimpanzee and human in a brain noncoding RNA [J].
Beniaminov, Artemy ;
Westhof, Eric ;
Krol, Alain .
RNA, 2008, 14 (07) :1270-1275