Rapid expansion of microsatellite sequences in pines

被引:49
作者
Karhu, A [1 ]
Dieterich, JH [1 ]
Savolainen, O [1 ]
机构
[1] Univ Oulu, Dept Biol, FIN-90401 Oulu, Finland
关键词
microsatellite; Pinus; stepwise mutation model; persistence time;
D O I
10.1093/oxfordjournals.molbev.a026305
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Microsatellite persistence time and evolutionary change was studied among five species of pines, which included a pair of closely related species (Pinus sylvestris and Pinus resinosa) in the subgenus Pious, their relative Pinus radiata, and another closely related species pair (Pinus strobus and Pinus lambertiana) in the subgenus Strobus. The effective population sizes of these species are known to have ranged from the very small bottlenecks of P. resinosa to vast populations of P. sylvestris. This background allowed us to place the microsatellite evolution in a well-defined phylogenetic setting. Of 30 loci originating from P. strobus and P. radiata, we were able to consistently amplify 4 in most of the these pine species. These priming sites had been conserved for over 100 Myr. The four microsatellites were sequenced in the five species. Flanking sequences were compared to establish that the loci were orthologous. All microsatellites had persisted in these species, despite very different population sizes. We found a recent microsatellite duplication: a closely related pair of loci in P. strobus, where the other four species had just one locus. On two independent occasions, the repeat area of this same microsatellite (locus RPS 105a/b) had grown from a very low repeat number to 15 or 17 in the last 10-25 Myr. Other parts of the same compound microsatellite had remained virtually unchanged. Locus PR 4.6 is known to be polymorphic in both P. radiata and P. sylvestris, but the polymorphism in the two species is due to different motifs. The very large pine genomes are highly repetitive, and microsatellite loci also occur as gene families.
引用
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页码:259 / 265
页数:7
相关论文
共 47 条
[31]   SEQUENCE CONSERVATION OF MICROSATELLITES BETWEEN BOS-TAURUS (CATTLE), CAPRA-HIRCUS (GOAT) AND RELATED SPECIES - EXAMPLES OF USE IN PARENTAGE TESTING AND PHYLOGENY ANALYSIS [J].
PEPIN, L ;
AMIGUES, Y ;
LEPINGLE, A ;
BERTHIER, JL ;
BENSAID, A ;
VAIMAN, D .
HEREDITY, 1995, 74 :53-61
[32]   Identification and characterization of microsatellites in Norway spruce (Picea abies K) [J].
Pfeiffer, A ;
Olivieri, AM ;
Morgante, M .
GENOME, 1997, 40 (04) :411-419
[33]  
Price Robert A., 1998, P49
[34]   Unraveling the processes of microsatellite evolution through analysis of germ line mutations in barn swallows Hirundo rustica [J].
Primmer, CR ;
Saino, N ;
Moller, AP ;
Ellegren, H .
MOLECULAR BIOLOGY AND EVOLUTION, 1998, 15 (08) :1047-1054
[35]   Directional evolution in germline microsatellite mutations [J].
Primmer, CR ;
Ellegren, H ;
Saino, N ;
Moller, AP .
NATURE GENETICS, 1996, 13 (04) :391-393
[36]   A wide-range survey of cross-species microsatellite amplification in birds [J].
Primmer, CR ;
Moller, AP ;
Ellegren, H .
MOLECULAR ECOLOGY, 1996, 5 (03) :365-378
[37]   Patterns of molecular evolution in avian microsatellites [J].
Primmer, CR ;
Ellegren, H .
MOLECULAR BIOLOGY AND EVOLUTION, 1998, 15 (08) :997-1008
[38]   470 million years of conservation of microsatellite loci among fish species [J].
Rico, C ;
Rico, I ;
Hewitt, G .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 1996, 263 (1370) :549-557
[39]   CONSERVATION OF POLYMORPHIC SIMPLE SEQUENCE LOCI IN CETACEAN SPECIES [J].
SCHLOTTERER, C ;
AMOS, B ;
TAUTZ, D .
NATURE, 1991, 354 (6348) :63-65
[40]  
SLATKIN M, 1995, GENETICS, V139, P457