The structures of mouse and human L1 elements reflect their insertion mechanism

被引:42
作者
Martin, SL
Li, WLP
Furano, A
Boissinot, S
机构
[1] Univ Colorado, Sch Med, Dept Cell & Dev Biol, Aurora, CO 80045 USA
[2] Univ Colorado, Sch Med, Human Med Genet Program, Aurora, CO USA
[3] NIDDKD, Sect Genom Struct & Funct, Mol & Cellular Biol Lab, NIH, Bethesda, MD USA
[4] CUNY, Queens Coll, Dept Biol, Flushing, NY USA
关键词
D O I
10.1159/000084956
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
L1 is an abundant, interspersed repeated DNA element of mammalian genomes. It has achieved its high copy number via retrotransposition. Like other non-LTR retrotransposons, L1 insertion into chromosomal DNA apparently occurs by target-site primed reverse transcription, or TPRT. L1 retrotransposition often generates elements with 5' truncations that are flanked by a duplication of the genomic target site (TSD). It is typically assumed that the 5' truncated elements are the consequence of poor processivity of the L1 reverse transcriptase. However, we find that the majority of young L1 elements from both the human and mouse genomes are truncated at sequences that can basepair with the target site. Thus, to whatever extent truncation is a consequence of poor processivity, we suggest that truncation is likely to occur when target site sequence can basepair with L I sequence. This finding supports a model for insertion that occurs by two sequential TPRT reactions, the second of which relies upon the homology between the target site and L1. Because perfect heteroduplex formation is not required for all insertions, a dynamic relationship between the primer, template and enzyme during reverse transcription is inferred. 5' truncation may be a successful evolutionary strategy that is exploited by L1 as a means to escape host suppression of transposition. Copyright (c) 2005 S. Karger AG, Basel.
引用
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页码:223 / 228
页数:6
相关论文
共 40 条
[1]  
ADEY NB, 1994, MOL BIOL EVOL, V11, P778
[2]   BASIC LOCAL ALIGNMENT SEARCH TOOL [J].
ALTSCHUL, SF ;
GISH, W ;
MILLER, W ;
MYERS, EW ;
LIPMAN, DJ .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 215 (03) :403-410
[3]  
[Anonymous], MOBILE DNA
[4]  
[Anonymous], 2002, MOBILE DNA-UK
[5]   High processivity of the reverse transcriptase from a non-long terminal repeat retrotransposon [J].
Bibillo, A ;
Eickbush, TH .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (38) :34836-34845
[6]   L1 (LINE-1) retrotransposon evolution and amplification in recent human history [J].
Boissinot, S ;
Chevret, P ;
Furano, AV .
MOLECULAR BIOLOGY AND EVOLUTION, 2000, 17 (06) :915-928
[7]   Selection against deleterious LINE-1-containing loci in the human lineage [J].
Boissinot, S ;
Entezam, A ;
Furano, AV .
MOLECULAR BIOLOGY AND EVOLUTION, 2001, 18 (06) :926-935
[8]   A SINGLE GLUTAMIC-ACID RESIDUE PLAYS A KEY ROLE IN THE TRANSCRIPTIONAL ACTIVATION FUNCTION OF LAMBDA REPRESSOR [J].
BUSHMAN, FD ;
SHANG, C ;
PTASHNE, M .
CELL, 1989, 58 (06) :1163-1171
[9]   The human genome contains many types of chimeric retrogenes generated through in vivo RNA recombination [J].
Buzdin, A ;
Gogvadze, E ;
Kovalskaya, E ;
Volchkov, P ;
Ustyugova, S ;
Illarionova, A ;
Fushan, A ;
Vinogradova, T ;
Sverdlov, E .
NUCLEIC ACIDS RESEARCH, 2003, 31 (15) :4385-4390
[10]   A new family of chimeric retrotranscripts formed by a full copy of U6 small nuclear RNA fused to the 3′ terminus of L1 [J].
Buzdin, A ;
Ustyugova, S ;
Gogvadze, E ;
Vinogradova, T ;
Lebedev, Y ;
Sverdlov, E .
GENOMICS, 2002, 80 (04) :402-406