A new theory of MHC evolution: beyond selection on the immune genes

被引:120
作者
van Oosterhout, Cock [1 ]
机构
[1] Univ Hull, Evolutionary Biol Grp, Kingston Upon Hull HU6 7RX, N Humberside, England
关键词
major histocompatibility complex; human leucocyte antigen; balancing selection; linkage disequilibrium; disease associations; plant self-incompatibility loci (S-loci); MAJOR HISTOCOMPATIBILITY COMPLEX; GUPPIES POECILIA-RETICULATA; CLASS-II; BALANCING SELECTION; SELF-INCOMPATIBILITY; GENEALOGICAL STRUCTURE; ALLELIC GENEALOGY; POLYMORPHISM; DISEASE; LOCUS;
D O I
10.1098/rspb.2008.1299
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The major histocompatibility complex (MHC) is a dense region of immune genes with high levels of polymorphism, which are arranged in haplotype blocks. Traditional models of balancing selection (i.e. overdominance and negative frequency dependence) were developed to study the population genetics of single genes. However, the MHC is a multigene family surrounded by linked (non-neutral) polymorphisms, and not all of its features are well explained by these models. For example, (i) the high levels of polymorphism in small populations, (ii) the unexpectedly large genetic differentiation between populations, (iii) the shape of the allelic genealogy associated with trans-species evolution, and (iv) the close associations between particular MHC (human leucocyte antigen, HLA) haplotypes and the approximately 100 pathologies in humans. Here, I propose a new model of MHC evolution named Associative Balancing Complex evolution that can explain these phenomena. The model proposes that recessive deleterious mutations accumulate as a 'sheltered load' nearby MHC genes. These mutations can accumulate because (i) they are rarely expressed as homozygotes given the high MHC gene diversity and (ii) purifying selection is inefficient with low recombination rates (cf. Muller's ratchet). Once fixed, these mutations add to balancing selection and further reinforce linkage through epistatic selection against recombinants.
引用
收藏
页码:657 / 665
页数:9
相关论文
共 55 条
[1]   High MHC diversity maintained by balancing selection in an otherwise genetically monomorphic mammal [J].
Aguilar, A ;
Roemer, G ;
Debenham, S ;
Binns, M ;
Garcelon, D ;
Wayne, RK .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (10) :3490-3494
[2]  
[Anonymous], 1998, Genetics and Analysis of Quantitative Traits (Sinauer)
[3]  
Bell G., 1982, Masterpiece of Nature: The Evolution and Genetics of Sexuality
[4]   MHC studies in nonmodel vertebrates: what have we learned about natural selection in 15 years? [J].
Bernatchez, L ;
Landry, C .
JOURNAL OF EVOLUTIONARY BIOLOGY, 2003, 16 (03) :363-377
[5]   Evolution by recombination and transspecies polymorphism in the MHC class I gene of Xenopus laevis [J].
Bos, DH ;
Waldman, B .
MOLECULAR BIOLOGY AND EVOLUTION, 2006, 23 (01) :137-143
[6]   Trans-specificity at loci near the self-incompatibility loci in Arabidopsis [J].
Charlesworth, D ;
Kamau, E ;
Hagenblad, J ;
Tang, CL .
GENETICS, 2006, 172 (04) :2699-2704
[7]   Gene conversion: mechanisms, evolution and human disease [J].
Chen, Jian-Min ;
Cooper, David N. ;
Chuzhanova, Nadia ;
Ferec, Claude ;
Patrinos, George P. .
NATURE REVIEWS GENETICS, 2007, 8 (10) :762-775
[8]   MAINTENANCE OF HISTOCOMPATIBILITY POLYMORPHISMS [J].
CLARKE, B ;
KIRBY, DRS .
NATURE, 1966, 211 (5052) :999-&
[9]   The variant call format and VCFtools [J].
Danecek, Petr ;
Auton, Adam ;
Abecasis, Goncalo ;
Albers, Cornelis A. ;
Banks, Eric ;
DePristo, Mark A. ;
Handsaker, Robert E. ;
Lunter, Gerton ;
Marth, Gabor T. ;
Sherry, Stephen T. ;
McVean, Gilean ;
Durbin, Richard .
BIOINFORMATICS, 2011, 27 (15) :2156-2158
[10]   Genomics of the major histocompatibility complex: haplotypes, duplication, retroviruses and disease [J].
Dawkins, R ;
Leelayuwat, C ;
Gaudieri, S ;
Tay, G ;
Hui, J ;
Cattley, S ;
Martinez, P ;
Kulski, J .
IMMUNOLOGICAL REVIEWS, 1999, 167 :275-304