Molecular evolution of an ancient mariner transposon, Hsmar1, in the human genome.
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[1] H. Robertson,et al. Molecular evolution of the second ancient human mariner transposon, Hsmar2, illustrates patterns of neutral evolution in the human genome lineage. , 1997, Gene.
[2] H. Robertson,et al. Multiple Mariner transposons in flatworms and hydras are related to those of insects. , 1997, The Journal of heredity.
[3] D. Hartl,et al. Mutations in the mariner transposase: the D,D(35)E consensus sequence is nonfunctional. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[4] A. Smit,et al. The origin of interspersed repeats in the human genome. , 1996, Current opinion in genetics & development.
[5] M. Churchill,et al. A purified mariner transposase is sufficient to mediate transposition in vitro , 1996, The EMBO journal.
[6] E. Mardis,et al. Generation and analysis of 280,000 human expressed sequence tags. , 1996, Genome research.
[7] H. Robertson,et al. Bmmar1: a basal lineage of the mariner family of transposable elements in the silkworm moth, Bombyx mori. , 1996, Insect biochemistry and molecular biology.
[8] L. Hood,et al. The Complete 685-Kilobase DNA Sequence of the Human β T Cell Receptor Locus , 1996, Science.
[9] H. Kiyosawa,et al. Primate origin of the CMT1A-REP repeat and analysis of a putative transposon-associated recombinational hotspot. , 1996, Human molecular genetics.
[10] J. Archibald. Fossil Evidence for a Late Cretaceous Origin of “Hoofed” Mammals , 1996, Science.
[11] Sudhir Kumar,et al. Continental breakup and the ordinal diversification of birds and mammals , 1996, Nature.
[12] D. Hartl,et al. Reconstructing the ancient mariners of humans , 1996, Nature Genetics.
[13] D. Hartl,et al. The most unkindest cut of all , 1996, Nature Genetics.
[14] J. Lupski,et al. A recombination hotspot responsible for two inherited peripheral neuropathies is located near a mariner transposon-like element , 1996, Nature Genetics.
[15] 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.
[16] W. Belknap,et al. Mariner transposons in humans , 1995, Nature.
[17] G. Morgan. Identification in the human genome of mobile elements spread by DNA-mediated transposition. , 1995, Journal of molecular biology.
[18] J. Sikela,et al. Gene–based sequence–tagged–sites (STSs) as the basis for a human gene map , 1995, Nature Genetics.
[19] P. Harte,et al. The Drosophila trithorax proteins contain a novel variant of the nuclear receptor type DNA binding domain and an ancient conserved motif found in other chromosomal proteins , 1995, Mechanisms of Development.
[20] Y. Bigot,et al. Human and other mammalian genomes contain transposons of the mariner family , 1995, FEBS letters.
[21] S. Clifton,et al. Sequence and analysis of the human ABL gene, the BCR gene, and regions involved in the Philadelphia chromosomal translocation. , 1995, Genomics.
[22] J. Garcia-Fernández,et al. High copy number of highly similar mariner-like transposons in planarian (Platyhelminthe): evidence for a trans-phyla horizontal transfer. , 1995, Molecular biology and evolution.
[23] R. de Frutos,et al. Structure and expression of clustered P element homologues in Drosophila subobscura and Drosophila guanche. , 1995, Gene.
[24] H. Robertson. The Tcl-mariner superfamily of transposons in animals , 1995 .
[25] M. Hoy,et al. Complete sequence of a mariner transposable element from the predatory mite Metaseiulus occidentalis isolated by an inverse PCR approach , 1995, Insect molecular biology.
[26] N. Nomura,et al. Prediction of the coding sequences of unidentified human genes. IV. The coding sequences of 40 new genes (KIAA0121-KIAA0160) deduced by analysis of cDNA clones from human cell line KG-1. , 1995, DNA research : an international journal for rapid publication of reports on genes and genomes.
[27] B. Rollins,et al. MONOCYTE CHEMOATTRACTANT PROTEIN-1 GENE IS EXPRESSED IN ACTIVATED NEUTROPHILS AND RETINOIC ACID-INDUCED HUMAN MYELOID CELL LINES , 1994 .
[28] S. Yamamoto,et al. Cloning and characterization of the human osteopontin gene and its promoter. , 1994, The Biochemical journal.
[29] G. Reuter,et al. The protein encoded by the Drosophila position‐effect variegation suppressor gene Su(var)3‐9 combines domains of antagonistic regulators of homeotic gene complexes. , 1994, The EMBO journal.
[30] R. Britten,et al. Evidence that most human Alu sequences were inserted in a process that ceased about 30 million years ago. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[31] P. Morgan,et al. Identification of a mariner-like repetitive sequence in C. elegans. , 1994, Nucleic acids research.
[32] N. Saitou,et al. Evolutionary rates of insertion and deletion in noncoding nucleotide sequences of primates. , 1994, Molecular biology and evolution.
[33] T. Doak. A proposed superfamily of transposase-related genes: new members in transposon-like elements of ciliated protozoa and a common "D35E" motif , 1994 .
[34] H. Robertson,et al. Five major subfamilies of mariner transposable elements in insects, including the Mediterranean fruit fly, and related arthropods , 1993, Insect molecular biology.
[35] W. Gelbart,et al. The Drosophila Polycomb-group gene Enhancer of zeste contains a region with sequence similarity to trithorax , 1993, Molecular and cellular biology.
[36] M. Goodman,et al. Molecular phylogeny of the New World monkeys (Platyrrhini, primates). , 1993, Molecular phylogenetics and evolution.
[37] D. Cox,et al. The development of sequence-tagged sites for human chromosome 4. , 1993, Human molecular genetics.
[38] R. Martin. Primate origins: plugging the gaps , 1993, Nature.
[39] Hugh M. Robertson,et al. The mariner transposable element is widespread in insects , 1993, Nature.
[40] R. Campbell,et al. The G9a gene in the human major histocompatibility complex encodes a novel protein containing ankyrin-like repeats. , 1993, The Biochemical journal.
[41] Wayne P. Maddison,et al. Macclade: Analysis of Phylogeny and Character Evolution/Version 3 , 1992 .
[42] H. Prydz,et al. CpG islands as gene markers in the human genome. , 1992, Genomics.
[43] J. Wrana,et al. Characterization of the promoter region of the porcine opn (osteopontin, secreted phosphoprotein 1) gene. Identification of positive and negative regulatory elements and a 'silent' second promoter. , 1992, European journal of biochemistry.
[44] J. Craig Venter,et al. Sequence identification of 2,375 human brain genes , 1992, Nature.
[45] D. Tautz,et al. Slippage synthesis of simple sequence DNA. , 1992, Nucleic acids research.
[46] N. Nassif,et al. Targeted gene replacement in Drosophila via P element-induced gap repair , 1991, Science.
[47] M. Bulmer,et al. Synonymous nucleotide substitution rates in mammalian genes: implications for the molecular clock and the relationship of mammalian orders. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[48] D. Cavener,et al. Eukaryotic start and stop translation sites. , 1991, Nucleic acids research.
[49] R. Britten,et al. Sources and evolution of human Alu repeated sequences. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[50] M. Nei,et al. Simple methods for estimating the numbers of synonymous and nonsynonymous nucleotide substitutions. , 1986, Molecular biology and evolution.
[51] Stephen M. Mount,et al. A catalogue of splice junction sequences. , 1982, Nucleic acids research.