Targeted engineering of the Caenorhabditis elegans genome following Mos1-triggered chromosomal breaks

被引:70
作者
Robert, Valerie [1 ]
Bessereau, Jean-Louis [1 ]
机构
[1] Ecole Normale Super, INSERM, U789, F-75005 Paris, France
关键词
DSB repair; homologous recombination; NHEJ; targeted mutagenesis;
D O I
10.1038/sj.emboj.7601463
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
The Drosophila element Mos1 is a class II transposon, which moves by a 'cut-and-paste' mechanism and can be experimentally mobilized in the Caenorhabditis elegans germ line. Here, we triggered the excision of identified Mos1 insertions to create chromosomal breaks at given sites and further manipulate the broken loci. Double-strand break (DSB) repair could be achieved by gene conversion using a transgene containing sequences homologous to the broken chromosomal region as a repair template. Consequently, mutations engineered in the transgene could be copied to a specific locus at high frequency. This pathway was further characterized to develop an efficient tool - called MosTIC - to manipulate the C. elegans genome. Analysis of DSB repair during MosTIC experiments demonstrated that DSBs could also be sealed by end-joining in the germ line, independently from the evolutionarily conserved Ku80 and ligase IV factors. In conjunction with a publicly available Mos1 insertion library currently being generated, MosTIC will provide a general tool to customize the C. elegans genome.
引用
收藏
页码:170 / 183
页数:14
相关论文
共 73 条
[31]   Partners and pathways - repairing a double-strand break [J].
Haber, JE .
TRENDS IN GENETICS, 2000, 16 (06) :259-264
[32]   THE UNC-5, UNC-6, AND UNC-40 GENES GUIDE CIRCUMFERENTIAL MIGRATIONS OF PIONEER AXONS AND MESODERMAL CELLS ON THE EPIDERMIS IN C-ELEGANS [J].
HEDGECOCK, EM ;
CULOTTI, JG ;
HALL, DH .
NEURON, 1990, 4 (01) :61-85
[33]   Mechanism of DNA double-strand break repair by non-homologous end joining [J].
Hefferin, ML ;
Tomkinson, AE .
DNA REPAIR, 2005, 4 (06) :639-648
[34]   Healing the wounds inflicted by Sleeping Beauty transposition by double-strand break repair in mammalian somatic cells [J].
Izsvák, Z ;
Stüwe, EE ;
Fiedler, D ;
Katzer, A ;
Jeggo, PA ;
Ivics, Z .
MOLECULAR CELL, 2004, 13 (02) :279-290
[35]  
JACOBSON JW, 1985, GENETICS, V111, P57
[36]   MOLECULAR-STRUCTURE OF A SOMATICALLY UNSTABLE TRANSPOSABLE ELEMENT IN DROSOPHILA [J].
JACOBSON, JW ;
MEDHORA, MM ;
HARTL, DL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1986, 83 (22) :8684-8688
[37]   Follicular lymphomas' BCL-2/IgH junctions contain templated nucleotide insertions:: novel insights into the mechanism of t(14;18) translocation [J].
Jäger, U ;
Böcskör, S ;
Le, T ;
Mitterbauer, G ;
Bolz, I ;
Chott, A ;
Kneba, M ;
Mannhalter, C ;
Nadel, B .
BLOOD, 2000, 95 (11) :3520-3529
[38]   Targeted gene knockout reveals a role in meiotic recombination for ZHP-3, a zip3-related protein in Caenorhabditis elegans [J].
Jantsch, V ;
Pasierbek, P ;
Mueller, MM ;
Schweizer, D ;
Jantsch, M ;
Loidl, J .
MOLECULAR AND CELLULAR BIOLOGY, 2004, 24 (18) :7998-8006
[39]   A genetic link between co-suppression and RNA interference in C-elegans [J].
Ketting, RF ;
Plasterk, RHA .
NATURE, 2000, 404 (6775) :296-298
[40]   mut-7 of C-elegans, required for transposon silencing and RNA interference, is a homolog of Werner syndrome helicase and RNaseD [J].
Ketting, RF ;
Haverkamp, THA ;
van Luenen, HGAM ;
Plasterk, RHA .
CELL, 1999, 99 (02) :133-141