Retrotransposition of the Li.LtrB group II intron proceeds predominantly via reverse splicing into DNA targets

被引:86
作者
Ichiyanagi, K
Beauregard, A
Lawrence, S
Smith, D
Cousineau, B
Belfort, M [1 ]
机构
[1] New York State Dept Hlth, Wadsworth Ctr, Mol Genet Program, Albany, NY 12201 USA
[2] SUNY Albany, Sch Publ Hlth, Albany, NY 12201 USA
关键词
D O I
10.1046/j.1365-2958.2002.03226.x
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
Catalytic group II introns are mobile retroelements that invade cognate intronless genes via retrohoming, where the introns reverse splice into double-stranded DNA (dsDNA) targets. They can also retrotranspose to ectopic sites at low frequencies. Whereas our previous studies with a bacterial intron, LI.LtrB, supported frequent use of RNA targets during retrotransposition, recent experiments with a retrotransposition indicator gene indicate that DNA, rather than RNA, is a prominent target, with both dsDNA and single-stranded DNA (ssDNA) as possibilities. Thus retrotransposition occurs in both transcriptional sense and antisense orientations of target genes, and is largely independent of homologous DNA recombination and of the endonuclease function of the intron-encoded protein, LtrA. Models based on both dsDNA and ssDNA targeting are presented. Interestingly, retrotransposition is biased toward the template for lagging-strand DNA synthesis, which suggests the possibility of the replication folk as a source of ssDNA. Consistent with some use of ssDNA targets, many retrotransposition sites lack nucleotides critical for the unwinding of target duplex DNA. Moreover, in vitro the intron reverse spliced into ssDNA more efficiently than dsDNA substrates for some of the retrotransposition sites. Furthermore, many bacterial group 11 introns reside on the lagging-strand template, hinting at a role for DNA replication in intron dispersal in nature.
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页码:1259 / 1272
页数:14
相关论文
共 55 条
[1]  
ALTSCHUL SF, 1990, J MOL BIOL, V215, P403, DOI 10.1006/jmbi.1990.9999
[2]  
[Anonymous], 1999, The RNA World
[3]   GENETIC DELINEATION OF FUNCTIONAL COMPONENTS OF THE GROUP-I INTRON IN THE PHAGE-T4 TD-GENE [J].
BELFORT, M ;
CHANDRY, PS ;
PEDERSENLANE, J .
COLD SPRING HARBOR SYMPOSIA ON QUANTITATIVE BIOLOGY, 1987, 52 :181-192
[4]  
Belfort Marlene, 2002, P761
[5]   The complete genome sequence of Escherichia coli K-12 [J].
Blattner, FR ;
Plunkett, G ;
Bloch, CA ;
Perna, NT ;
Burland, V ;
Riley, M ;
ColladoVides, J ;
Glasner, JD ;
Rode, CK ;
Mayhew, GF ;
Gregor, J ;
Davis, NW ;
Kirkpatrick, HA ;
Goeden, MA ;
Rose, DJ ;
Mau, B ;
Shao, Y .
SCIENCE, 1997, 277 (5331) :1453-+
[6]   Low-redundancy sequencing of the entire Lactococcus lactis IL1403 genome [J].
Bolotin, A ;
Mauger, S ;
Malarme, K ;
Ehrlich, SD ;
Sorokin, A .
ANTONIE VAN LEEUWENHOEK INTERNATIONAL JOURNAL OF GENERAL AND MOLECULAR MICROBIOLOGY, 1999, 76 (1-4) :27-76
[7]   The complete genome sequence of the lactic acid bacterium Lactococcus lactis ssp lactis IL1403 [J].
Bolotin, A ;
Wincker, P ;
Mauger, S ;
Jaillon, O ;
Malarme, K ;
Weissenbach, J ;
Ehrlich, SD ;
Sorokin, A .
GENOME RESEARCH, 2001, 11 (05) :731-753
[8]   The ins and outs of group II introns [J].
Bonen, L ;
Vogel, J .
TRENDS IN GENETICS, 2001, 17 (06) :322-331
[9]   A 4TH CLASS OF THETA-REPLICATING PLASMIDS - THE PAM-BETA-1 FAMILY FROM GRAM-POSITIVE BACTERIA [J].
BRUAND, C ;
LECHATELIER, E ;
EHRLICH, SD ;
JANNIERE, L .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (24) :11668-11672
[10]   Improved vectors for nisin-controlled expression in gram-positive bacteria [J].
Bryan, EM ;
Bae, T ;
Kleerebezem, H ;
Dunny, GM .
PLASMID, 2000, 44 (02) :183-190