New superfamilies of eukaryotic DNA transposons and their internal divisions.
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[1] Y. Panchin,et al. Molluscan mobile elements similar to the vertebrate Recombination-Activating Genes. , 2008, Biochemical and biophysical research communications.
[2] J. Jurka,et al. A universal classification of eukaryotic transposable elements implemented in Repbase , 2008, Nature Reviews Genetics.
[3] M. Nei,et al. MEGA4: Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0. , 2007, Molecular biology and evolution.
[4] Nicholas H. Putnam,et al. Sea Anemone Genome Reveals Ancestral Eumetazoan Gene Repertoire and Genomic Organization , 2007, Science.
[5] A. Gentles,et al. Evolutionary dynamics of transposable elements in the short-tailed opossum Monodelphis domestica. , 2007, Genome research.
[6] M. Batzer,et al. Birth of a chimeric primate gene by capture of the transposase gene from a mobile element. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[7] S. Adl,et al. The New Higher Level Classification of Eukaryotes with Emphasis on the Taxonomy of Protists , 2005, The Journal of eukaryotic microbiology.
[8] R. Ghirlando,et al. Molecular architecture of a eukaryotic DNA transposase , 2005, Nature Structural &Molecular Biology.
[9] J. Jurka,et al. Repbase Update, a database of eukaryotic repetitive elements , 2005, Cytogenetic and Genome Research.
[10] J. Jurka,et al. RAG1 Core and V(D)J Recombination Signal Sequences Were Derived from Transib Transposons , 2005, PLoS biology.
[11] G. Crooks,et al. WebLogo: a sequence logo generator. , 2004, Genome research.
[12] Elizabeth Pennisi,et al. Drafting a Tree , 2003, Science.
[13] S. Eddy,et al. Automated de novo identification of repeat sequence families in sequenced genomes. , 2002, Genome research.
[14] Z. Tu,et al. Expanding the diversity of the IS630-Tc1-mariner superfamily: discovery of a unique DD37E transposon and reclassification of the DD37D and DD39D transposons. , 2001, Genetics.
[15] Tania A. Baker,et al. Comparative architecture of transposase and integrase complexes , 2001, Nature Structural Biology.
[16] P. Wright,et al. Zinc finger proteins: new insights into structural and functional diversity. , 2001, Current opinion in structural biology.
[17] D. Higgins,et al. T-Coffee: A novel method for fast and accurate multiple sequence alignment. , 2000, Journal of molecular biology.
[18] H. Robertson,et al. Molecular evolution of an ancient mariner transposon, Hsmar1, in the human genome. , 1997, Gene.
[19] Thomas L. Madden,et al. Gapped BLAST and PSI-BLAST: a new generation of protein database search programs. , 1997, Nucleic acids research.
[20] A. Smit,et al. Tiggers and DNA transposon fossils in the human genome. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[21] A. Engelman,et al. Crystal structure of the catalytic domain of HIV-1 integrase: similarity to other polynucleotidyl transferases. , 1994, Science.
[22] J. Jurka. Conserved eukaryotic transposable elements and the evolution of gene regulation , 2007, Cellular and Molecular Life Sciences.
[23] Jacques Mahillon,et al. Insertion Sequences revisited , 2002 .
[24] Alan M. Lambowitz,et al. Mobile DNA III , 2002 .
[25] Z. Tu,et al. Expanding the Diversity of the IS 630-Tc 1-mariner Superfamily : Discovery of a Unique DD 37 E Transposon and Reclassification of the DD 37 D and DD 39 D Transposons , 2001 .
[26] T. A. Hall,et al. BIOEDIT: A USER-FRIENDLY BIOLOGICAL SEQUENCE ALIGNMENT EDITOR AND ANALYSIS PROGRAM FOR WINDOWS 95/98/ NT , 1999 .