Fast rate of evolution in alternatively spliced coding regions of mammalian genes

被引:29
作者
Ermakova, EO
Nurtdinov, RN
Gelfand, MS
机构
[1] Moscow MV Lomonosov State Univ, Dept Bioengn & Bioinformat, Moscow 119992, Russia
[2] Russian Acad Sci, Inst Informat Transmission Problems, Res & Training Ctr Bioinformat, Moscow 127994, Russia
关键词
D O I
10.1186/1471-2164-7-84
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: At least half of mammalian genes are alternatively spliced. Alternative isoforms are often genome-specific and it has been suggested that alternative splicing is one of the major mechanisms for generating protein diversity in the course of evolution. Another way of looking at alternative splicing is to consider sequence evolution of constitutive and alternative regions of protein-coding genes. Indeed, it turns out that constitutive and alternative regions evolve in different ways. Results: A set of 3029 orthologous pairs of human and mouse alternatively spliced genes was considered. The rate of nonsynonymous substitutions (d(N)), the rate of synonymous substitutions (d(S)), and their ratio (omega = d(N)/d(S)) appear to be significantly higher in alternatively spliced coding regions compared to constitutive regions. When N-terminal, internal and C-terminal alternatives are analysed separately, C-terminal alternatives appear to make the main contribution to the observed difference. The effects become even more pronounced in a subset of fast evolving genes. Conclusion: These results provide evidence of weaker purifying selection and/or stronger positive selection in alternative regions and thus one more confirmation of accelerated evolution in alternative regions. This study corroborates the theory that alternative splicing serves as a testing ground for molecular evolution.
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页数:8
相关论文
共 39 条
[31]   Intronic sequences flanking alternatively spliced exons are conserved between human and mouse [J].
Sorek, R ;
Ast, G .
GENOME RESEARCH, 2003, 13 (07) :1631-1637
[32]   Evolution of alternative splicing after gene duplication [J].
Su, ZX ;
Wa, JM ;
Yu, J ;
Huang, XQ ;
Gu, X .
GENOME RESEARCH, 2006, 16 (02) :182-189
[33]   Protein modularity of alternatively spliced exons is associated with tissue-specific regulation of alternative splicing [J].
Xing, Y ;
Lee, CJ .
PLOS GENETICS, 2005, 1 (03) :323-328
[34]   Assessing the application of Ka/Ks ratio test to alternatively spliced exons [J].
Xing, Y ;
Lee, C .
BIOINFORMATICS, 2005, 21 (19) :3701-3703
[35]   Evidence of functional selection pressure for alternative splicing events that accelerate evolution of protein subsequences [J].
Xing, Y ;
Lee, C .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (38) :13526-13531
[36]  
XING Y, 2006, IN PRESS GENE 0216
[37]  
Yang ZH, 1997, COMPUT APPL BIOSCI, V13, P555
[38]   Identification and analysis of alternative splicing events conserved in human and mouse [J].
Yeo, GW ;
Van Nostrand, E ;
Holste, D ;
Poggio, T ;
Burge, CB .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (08) :2850-2855
[39]   Different evolutionary patterns between young duplicate genes in the human genome [J].
Zhang, P ;
Gu, ZL ;
Li, WH .
GENOME BIOLOGY, 2003, 4 (09)