Molecular and temporal characteristics of human retropseudogenes

被引:17
作者
Devor, EJ [1 ]
Moffat-Wilson, KA
机构
[1] Integrated DNA Technologies, Mol Genet & Bioinformat, Coralville, IA 52241 USA
[2] Univ Kansas, Dept Anthropol, Lawrence, KS 66045 USA
关键词
retrotranscription; molecular fossil record; retroposition; primate phylogeny;
D O I
10.1353/hub.2003.0075
中图分类号
Q98 [人类学];
学科分类号
030303 ;
摘要
One of the primary forces driving genome evolution is retrotranscription. In addition to creating new genetic material from which new genes with new functions arise, retrotranscription leaves traces of its action in the form of retropseudogenes. These loci, which are intronless, retrotransposed copies of mature mRNAs from functional antecedent genes, are layered throughout genomes as a molecular fossil record of genome evolution. A survey of 138 functional source genes in the human genome has revealed more than three hundred retropseudogenes. Analysis of the characteristics of the source genes shows that, on average, their size, G/C content, and expression patterns fit the canonical features of source genes reported elsewhere. Details of insertion site duplications for these loci are consistent with a model of retropseudogene formation involving endogenous retrotranscription and enzymatic mobilization and retroposition. Retrotranscription event age estimates reveal a pattern in which the highest densities appear after major phylogenetic events in primate history and then decline. This temporal pattern suggests that the processes forging genome evolution are most active during periods of speciation and adaptive radiation and then steadily diminish until the next burst of activity.
引用
收藏
页码:661 / 672
页数:12
相关论文
共 27 条
[1]   Alu fossil relics - Distribution and insertion polymorphism? [J].
Arcot, SS ;
Adamson, AW ;
Lamerdin, JE ;
Kanagy, B ;
Deininger, PL ;
Carrano, AV ;
Batzer, MA .
GENOME RESEARCH, 1996, 6 (11) :1084-1092
[2]   Alu repeats and human genomic diversity [J].
Batzer, MA ;
Deininger, PL .
NATURE REVIEWS GENETICS, 2002, 3 (05) :370-379
[3]   Genetic variation of recent Alu insertions in human populations [J].
Batzer, MA ;
Arcot, SS ;
Phinney, JW ;
AlegriaHartman, M ;
Kass, DH ;
Milligan, SM ;
Kimpton, C ;
Gill, P ;
Hochmeister, M ;
Ioannou, PA ;
Herrera, RJ ;
Boudreau, DA ;
Scheer, WD ;
Keats, BJB ;
Deininger, PL ;
Stoneking, M .
JOURNAL OF MOLECULAR EVOLUTION, 1996, 42 (01) :22-29
[4]   Genomes were forged by massive bombardments with retroelements and retrosequences [J].
Brosius, J .
GENETICA, 1999, 107 (1-3) :209-238
[5]   Large-scale analysis of the Alu Ya5 and Yb8 subfamilies and their contribution to human genomic diversity [J].
Carroll, ML ;
Roy-Engel, AM ;
Nguyen, SV ;
Salem, AH ;
Vogel, E ;
Vincent, B ;
Myers, J ;
Ahmad, Z ;
Nguyen, L ;
Sammarco, M ;
Watkins, WS ;
Henke, J ;
Makalowski, W ;
Jorde, LB ;
Deininger, PL ;
Batzer, MA .
JOURNAL OF MOLECULAR BIOLOGY, 2001, 311 (01) :17-40
[6]   Targeting of human retrotransposon integration is directed by the specificity of the L1 endonuclease for regions of unusual DNA structure [J].
Cost, GJ ;
Boeke, JD .
BIOCHEMISTRY, 1998, 37 (51) :18081-18093
[7]   Birth of two chimeric genes in the Hominidae lineage [J].
Courseaux, A ;
Nahon, JL .
SCIENCE, 2001, 291 (5507) :1293-+
[8]  
DEVOR EJ, 2003, UNPUB J HEREDITY
[9]   Recent duplication, domain accretion and the dynamic mutation of the human genome [J].
Eichler, EE .
TRENDS IN GENETICS, 2001, 17 (11) :661-669
[10]   Calculation and verification of the ages of retroprocessed pseudogenes [J].
Friedberg, F ;
Rhoads, AR .
MOLECULAR PHYLOGENETICS AND EVOLUTION, 2000, 16 (01) :127-130