Literature DB >> 9037046

Mutations in the mariner transposase: the D,D(35)E consensus sequence is nonfunctional.

A R Lohe1, D De Aguiar, D L Hartl.   

Abstract

Genetic analysis of eukaryote transposases and comparison with their prokaryote counterparts have been greatly hindered by difficulty in isolating mutations. We describe a simple eye-color screen that facilitates isolation and analysis of mutations in the mariner transposase in Drosophila melanogaster. Use of ethyl methanesulfonate and site-directed mutagenesis has identified 18 residues that are critical for in vivo excision of a target mariner element. When the mutations were examined in heterozygous mutant/nonmutant genotypes, more than half of the mutant transposase proteins were found to reduce the activity of the wild-type transposase, as assayed by the frequency of germline excision of a target element. Remarkably, transposase function is obliterated when the D,D(34)D acidic, ion-binding domain is replaced with the consensus sequence D,D(34)E found in the nematode Tc1 transposase and in many other transposases in the superfamily. A number of mutations strongly complement wild-type transposase in a dominant-negative manner, suggestive of subunit interactions in the excision reaction; these mutations are located in a small region that includes part of the D,D(34)D motif. Transposase function also is eliminated by a mutation in the inferred initiation codon and by a mutation in a putative nuclear localization signal.

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Year:  1997        PMID: 9037046      PMCID: PMC19784          DOI: 10.1073/pnas.94.4.1293

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  23 in total

1.  Identification of functional domains and evolution of Tc1-like transposable elements.

Authors:  Z Ivics; Z Izsvak; A Minter; P B Hackett
Journal:  Proc Natl Acad Sci U S A       Date:  1996-05-14       Impact factor: 11.205

2.  Autoregulation of mariner transposase activity by overproduction and dominant-negative complementation.

Authors:  A R Lohe; D L Hartl
Journal:  Mol Biol Evol       Date:  1996-04       Impact factor: 16.240

3.  Analysis of P transposable element functions in Drosophila.

Authors:  R E Karess; G M Rubin
Journal:  Cell       Date:  1984-08       Impact factor: 41.582

4.  Mariner-like elements in hymenopteran species: insertion site and distribution.

Authors:  Y Bigot; M H Hamelin; P Capy; G Periquet
Journal:  Proc Natl Acad Sci U S A       Date:  1994-04-12       Impact factor: 11.205

5.  Genetic transformation of Drosophila with transposable element vectors.

Authors:  G M Rubin; A C Spradling
Journal:  Science       Date:  1982-10-22       Impact factor: 47.728

6.  The two single-strand cleavages at each end of Tn10 occur in a specific order during transposition.

Authors:  S Bolland; N Kleckner
Journal:  Proc Natl Acad Sci U S A       Date:  1995-08-15       Impact factor: 11.205

7.  Identification of residues in the Mu transposase essential for catalysis.

Authors:  T A Baker; L Luo
Journal:  Proc Natl Acad Sci U S A       Date:  1994-07-05       Impact factor: 11.205

8.  Switching from cut-and-paste to replicative Tn7 transposition.

Authors:  E W May; N L Craig
Journal:  Science       Date:  1996-04-19       Impact factor: 47.728

9.  Tc1 transposase of Caenorhabditis elegans is an endonuclease with a bipartite DNA binding domain.

Authors:  J C Vos; R H Plasterk
Journal:  EMBO J       Date:  1994-12-15       Impact factor: 11.598

10.  Mobilization of quiet, endogenous Tc3 transposons of Caenorhabditis elegans by forced expression of Tc3 transposase.

Authors:  H G van Luenen; S D Colloms; R H Plasterk
Journal:  EMBO J       Date:  1993-06       Impact factor: 11.598

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  31 in total

1.  Discovery of the transposable element mariner.

Authors:  D Hartl
Journal:  Genetics       Date:  2001-02       Impact factor: 4.562

2.  Self-inflicted wounds, template-directed gap repair and a recombination hotspot. Effects of the mariner transposase.

Authors:  A R Lohe; C Timmons; I Beerman; E R Lozovskaya; D L Hartl
Journal:  Genetics       Date:  2000-02       Impact factor: 4.562

3.  cis and trans factors affecting Mos1 mariner evolution and transposition in vitro, and its potential for functional genomics.

Authors:  L R Tosi; S M Beverley
Journal:  Nucleic Acids Res       Date:  2000-02-01       Impact factor: 16.971

4.  Expanding the diversity of the IS630-Tc1-mariner superfamily: discovery of a unique DD37E transposon and reclassification of the DD37D and DD39D transposons.

Authors:  H Shao; Z Tu
Journal:  Genetics       Date:  2001-11       Impact factor: 4.562

5.  Neutral evolution of ten types of mariner transposons in the genomes of Caenorhabditis elegans and Caenorhabditis briggsae.

Authors:  David J Witherspoon; Hugh M Robertson
Journal:  J Mol Evol       Date:  2003-06       Impact factor: 2.395

6.  Mutational analysis of the N-terminal DNA-binding domain of sleeping beauty transposase: critical residues for DNA binding and hyperactivity in mammalian cells.

Authors:  Stephen R Yant; Julie Park; Yong Huang; Jacob Giehm Mikkelsen; Mark A Kay
Journal:  Mol Cell Biol       Date:  2004-10       Impact factor: 4.272

7.  Birth of a chimeric primate gene by capture of the transposase gene from a mobile element.

Authors:  Richard Cordaux; Swalpa Udit; Mark A Batzer; Cédric Feschotte
Journal:  Proc Natl Acad Sci U S A       Date:  2006-05-03       Impact factor: 11.205

8.  Target capture during Mos1 transposition.

Authors:  Aude Pflieger; Jerôme Jaillet; Agnès Petit; Corinne Augé-Gouillou; Sylvaine Renault
Journal:  J Biol Chem       Date:  2013-11-22       Impact factor: 5.157

Review 9.  Gene therapy vectors: the prospects and potentials of the cut-and-paste transposons.

Authors:  Corentin Claeys Bouuaert; Ronald M Chalmers
Journal:  Genetica       Date:  2009-08-02       Impact factor: 1.082

Review 10.  Bacterial genetic methods to explore the biology of mariner transposons.

Authors:  David J Lampe
Journal:  Genetica       Date:  2009-08-27       Impact factor: 1.082

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