Human transposon-like elements insert at a preferred target site: evidence for a retrovirally mediated process
- 1 January 1988
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 16 (3) , 1143-1151
- https://doi.org/10.1093/nar/16.3.1143
Abstract
Members of the human transposon-like family of repetitive sequences (called THE 1 repeats) like many other repetitive DNA sequences are flanked by short direct repeats. Comparison of the base sequences of twelve examples of these flanking direct repeats indicates that THE 1 repeats insert into a preferred genomic target site. In one case, we have identified the sequence of an empty site into which a THE 1 element inserted. The sequence of this empty site and sequences of truncated THE 1 LTRs are consistent with a retroviral mechanism for the insertion of THE 1 elements. Truncated transposon structures illustrate for the first time that intermediate structures of retrotransposition may also be integrated into the genome.Keywords
This publication has 22 references indexed in Scilit:
- Cloned extrachromosomal circular DNA copies of the human transposable element THE-1 are related predominantly to a single type of family memberJournal of Molecular Biology, 1987
- Correct integration of retroviral DNA in vitroCell, 1987
- Complete sequence and structure of the gene for human adenosine deaminaseBiochemistry, 1986
- The steps of reverse transcription of drosophila mobile dispersed genetic elements and U3-R-U5 structure of their LTRsCell, 1986
- Mutants and pseudorevertants of moloney murine leukemia virus with alterations at the integration siteCell, 1985
- Sequence-specific insertion of the Drosophila transposable genetic element 17.6Nature, 1984
- Circles with two tandem LTRs are precursors to integrated retrovirus DNACell, 1984
- Preferential integration of yeast transposable element Ty into a promoter regionNature, 1984
- Form and Function of Retroviral ProvirusesScience, 1982
- Evidence for transposition of dispersed repetitive DNA families in yeastCell, 1979