Formation and branch migration of Holliday junctions mediated by eukaryotic recombinases

被引:40
|
作者
Murayama, Yasuto [1 ]
Kurokawa, Yumiko [1 ]
Mayanagi, Kouta [2 ,3 ]
Iwasaki, Hiroshi [1 ]
机构
[1] Yokohama City Univ, Div Mol & Cellular Biol, Int Grad Sch Arts & Sci, Kanagawa 2300045, Japan
[2] Nagahama Inst Biosci & Technol, Dept Biosci, Shiga 5260829, Japan
[3] JST, BIRD, Shiga 5260829, Japan
基金
日本学术振兴会;
关键词
D O I
10.1038/nature06609
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Holliday junctions ( HJs) are key intermediates in homologous recombination and are especially important for the production of crossover recombinants(1-4). Bacterial RecA family proteins promote the formation and branch migration of HJs in vitro by catalysing a reciprocal DNA- strand exchange reaction between two duplex DNA molecules, one of which contains a single- stranded DNA region that is essential for initial nucleoprotein filament formation(5). This activity has been reported only for prokaryotic RecA family recombinases(5), although eukaryotic homologues are also essential for HJ production in vivo(6,7). Here we show that fission yeast ( Rhp51) and human ( hRad51) RecA homologues promote duplex - duplex DNA- strand exchange in vitro. As with RecA, a HJ is formed between the two duplex DNA molecules, and reciprocal strand exchange proceeds through branch migration of the HJ. In contrast to RecA, however, strand exchange mediated by eukaryotic recombinases proceeds in the 3 '-->5 ' direction relative to the single- stranded DNA region of the substrate DNA. The opposite polarity of Rhp51 makes it especially suitable for the repair of DNA double- strand breaks, whose repair is initiated at the processed ends of breaks that have protruding 3 ' termini(1,2).
引用
收藏
页码:1018 / U10
页数:5
相关论文
共 50 条
  • [31] BRANCH MIGRATION OF HOLLIDAY JUNCTIONS PROMOTED BY THE ESCHERICHIA-COLI RUVA AND RUVB PROTEINS .1. COMPARISON OF RUVAB-MEDIATED AND RUVB-MEDIATED REACTIONS
    MULLER, B
    TSANEVA, IR
    WEST, SC
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1993, 268 (23) : 17179 - 17184
  • [32] ATP-DEPENDENT BRANCH MIGRATION OF HOLLIDAY JUNCTIONS PROMOTED BY THE RUVA AND RUVB PROTEINS OF ESCHERICHIA-COLI
    TSANEVA, IR
    MULLER, B
    WEST, SC
    CELL, 1992, 69 (07) : 1171 - 1180
  • [33] A histone octamer blocks branch migration of a Holliday junction
    Grigoriev, M
    Hsieh, P
    MOLECULAR AND CELLULAR BIOLOGY, 1997, 17 (12) : 7139 - 7150
  • [34] Mechanism of AAA plus ATPase-mediated RuvAB-Holliday junction branch migration
    Wald, Jiri
    Fahrenkamp, Dirk
    Goessweiner-Mohr, Nikolaus
    Lugmayr, Wolfgang
    Ciccarelli, Luciano
    Vesper, Oliver
    Marlovits, Thomas C.
    NATURE, 2022, 609 (7927) : 630 - +
  • [35] ENZYMATIC FORMATION AND RESOLUTION OF HOLLIDAY JUNCTIONS INVITRO
    MULLER, B
    JONES, C
    KEMPER, B
    WEST, SC
    CELL, 1990, 60 (02) : 329 - 336
  • [36] A MUTATION IN HELICASE MOTIF-III OF ESCHERICHIA-COLI RECG PROTEIN ABOLISHES BRANCH MIGRATION OF HOLLIDAY JUNCTIONS
    SHARPLES, GJ
    WHITBY, MC
    RYDER, L
    LLOYD, RG
    NUCLEIC ACIDS RESEARCH, 1994, 22 (03) : 308 - 313
  • [37] Direct observation of RuvAB-catalyzed branch migration of single Holliday junctions (vol 101, pg 11605, 2004)
    Amit, Roee
    Gileadi, Opher
    Stavans, Joel
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (33) : 12654 - 12654
  • [38] REVERSE BRANCH MIGRATION OF HOLLIDAY JUNCTIONS BY RECG PROTEIN - A NEW MECHANISM FOR RESOLUTION OF INTERMEDIATES IN RECOMBINATION AND DNA-REPAIR
    WHITBY, MC
    RYDER, L
    LLOYD, RG
    CELL, 1993, 75 (02) : 341 - 350
  • [39] Structure and mechanism of the RuvB Holliday junction branch migration motor
    Putnam, CD
    Clancy, SB
    Tsuruta, H
    Gonzalez, S
    Wetmur, JG
    Tainer, JA
    JOURNAL OF MOLECULAR BIOLOGY, 2001, 311 (02) : 297 - 310
  • [40] A PIVOTAL ROLE FOR THE STRUCTURE OF THE HOLLIDAY JUNCTION IN DNA BRANCH MIGRATION
    PANYUTIN, IG
    BISWAS, I
    HSIEH, P
    EMBO JOURNAL, 1995, 14 (08): : 1819 - 1826