Biased distribution of microsatellite motifs in the rice genome

被引:51
作者
Grover, Atul [1 ]
Aishwarya, Veenu [1 ]
Sharma, P. C. [1 ]
机构
[1] Guru Gobind Singh Indraprastha Univ, Univ Sch Biotehcnol, Delhi 110006, India
关键词
microsatellites; O; sativa; microcolinearity; mutability;
D O I
10.1007/s00438-006-0204-y
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
Microsatellites are useful tools to study the extent of divergence between two taxonomic groups that show high sequence similarity. We have compared microsatellite distribution to illustrate genetic variation between the two rice genomes, Oryza sativa L. ssp. indica and Oryza sativa L. ssp. japonica. Microsatellite distribution proved to be non random as certain regions of very high microsatellite density have been identified. Microsatellite density in the subspecies japonica was computed marginally higher than in the subspecies indica in the genomic regions compared between the two subspecies. Unexpectedly high microsatellite densities were observed in 5'-untranslated regions of genes. These regions also displayed a clear motif bias. Some of the longest microsatellite repeats were found in intron sequences. Frequency, as well as motif bias was also noted with respect to the association of microsatellites with transposable elements. Microsatellite mutability values were exemplarily estimated for 90 loci by aligning the microsatellite containing regions between the two genomes. Poor rates of finding an orthologue corresponded with high microsatellite mutability in rice. These insights are likely to play a significant role in selecting microsatellite loci to be used in molecular breeding and studying evolutionary dynamics of the two subspecies.
引用
收藏
页码:469 / 480
页数:12
相关论文
共 57 条
[1]   Micron, a microsatellite-targeting transposable element in the rice genome [J].
Akagi, H ;
Yokozeki, Y ;
Inagaki, A ;
Mori, K ;
Fujimura, T .
MOLECULAR GENETICS AND GENOMICS, 2001, 266 (03) :471-480
[2]   ALU REPEATS - A SOURCE FOR THE GENESIS OF PRIMATE MICROSATELLITES [J].
ARCOT, SS ;
WANG, ZY ;
WEBER, JL ;
DEININGER, PL ;
BATZER, MA .
GENOMICS, 1995, 29 (01) :136-144
[3]   Trinucleotide repeat expansion and human disease [J].
Ashley, CT ;
Warren, ST .
ANNUAL REVIEW OF GENETICS, 1995, 29 :703-728
[4]   Structural basis for triplet repeat disorders: a computational analysis [J].
Baldi, P ;
Brunak, S ;
Chauvin, Y ;
Pedersen, AG .
BIOINFORMATICS, 1999, 15 (11) :918-929
[5]   The use of the Monsanto draft rice genome sequence in research [J].
Barry, GF .
PLANT PHYSIOLOGY, 2001, 125 (03) :1164-1165
[6]   Cis-acting modifiers of expanded CAG CTG triplet repeat expandability:: associations with flanking GC content and proximity to CpG islands [J].
Brock, GJR ;
Anderson, NH ;
Monckton, DG .
HUMAN MOLECULAR GENETICS, 1999, 8 (06) :1061-1067
[7]   EFFECTS OF POLY[D(PGPT). D(PAPC)] AND POLY[D(PCPG). D(PCPG)] REPEATS ON HOMOLOGOUS RECOMBINATION IN SOMATIC-CELLS [J].
BULLOCK, P ;
MILLER, J ;
BOTCHAN, M .
MOLECULAR AND CELLULAR BIOLOGY, 1986, 6 (11) :3948-3953
[8]   Compositional properties of homologous coding sequences from plants [J].
Carels, N ;
Hatey, P ;
Jabbari, K ;
Bernardi, G .
JOURNAL OF MOLECULAR EVOLUTION, 1998, 46 (01) :45-53
[9]   Microsatellites: Simple sequences with complex evolution [J].
Ellegren, H .
NATURE REVIEWS GENETICS, 2004, 5 (06) :435-445
[10]   Microsatellite evolution - A reciprocal study of repeat lengths at homologous loci in cattle and sheep [J].
Ellegren, H ;
Moore, S ;
Robinson, N ;
Byrne, K ;
Ward, W ;
Sheldon, BC .
MOLECULAR BIOLOGY AND EVOLUTION, 1997, 14 (08) :854-860