Crystal structure of T4 endonuclease VII resolving a Holliday junction

被引:102
作者
Biertuempfel, Christian
Yang, Wei
Suck, Dietrich
机构
[1] NIDDKD, Mol Biol Lab, Bethesda, MD 20892 USA
[2] European Mol Biol Lab, Struct & Computat Biol Programme, D-69117 Heidelberg, Germany
关键词
D O I
10.1038/nature06152
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 proposed a four-way DNA junction as an intermediate in homologous recombination(1), and such Holliday junctions have since been identified as a central component in DNA recombination and repair(2). Phage T4 endonuclease VII (endo VII) was the first enzyme shown to resolve Holliday junctions into duplex DNAs by introducing symmetrical nicks in equivalent strands(3). Several Holliday junction resolvases have since been characterized(4), but an atomic structure of a resolvase complex with a Holliday junction remained elusive. Here we report the crystal structure of an inactive T4 endo VII(N62D) complexed with an immobile four-way junction with alternating arm lengths of 10 and 14 base pairs. The junction is a hybrid of the conventional square-planar and stacked-X conformation. Endo VII protrudes into the junction point from the minor groove side, opening it to a 14 angstrom x 32 angstrom parallelogram. This interaction interrupts the coaxial stacking, yet every base pair surrounding the junction remains intact. Additional interactions involve the positively charged protein and DNA phosphate backbones. Each scissile phosphate that is two base pairs from the crossover interacts with a Mg2+ ion in the active site. The similar overall shape and surface charge potential of the Holliday junction resolvases endo VII, RuvC, Ydc2, Hjc and RecU, despite having different folds, active site composition and DNA sequence preference, suggest a conserved binding mode for Holliday junctions.
引用
收藏
页码:616 / U14
页数:6
相关论文
共 50 条
  • [21] Crystal structure of a DNA Holliday junction
    Ortiz-Lombardía, M
    González, A
    Eritja, R
    Aymamí, J
    Azorín, F
    Coll, M
    [J]. NATURE STRUCTURAL BIOLOGY, 1999, 6 (10) : 913 - 917
  • [22] Crystal structure of a DNA Holliday junction
    Miguel Ortiz-Lombardía
    Ana González
    Ramón Eritja
    Joan Aymamí
    Fernando Azorín
    Miquel Coll
    [J]. Nature Structural Biology, 1999, 6 : 913 - 917
  • [23] T4 endonuclease VII selects and alters the structure of the four-way DNA junction; Binding of a resolution-defective mutant enzyme
    Pohler, JRG
    GiraudPanis, MJE
    Lilley, DMJ
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1996, 260 (05) : 678 - 696
  • [24] The phage T4 protein UvsW drives Holliday Junction branch migration
    Webb, Michael R.
    Plank, Jody L.
    Long, David T.
    Hsieh, Tao-Shih
    Kreuzer, Kenneth N.
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (47) : 34401 - 34411
  • [25] CRYSTAL-STRUCTURE OF T4 ENDONUCLEASE-V IN COMPLEX WITH A DNA SUBSTRATE
    VASSYLYEV, DG
    KASHIWAGI, T
    MIKAMI, Y
    ARIYOSHI, M
    IWAI, S
    OHTSUKA, E
    MORIKAWA, K
    [J]. PROTEIN ENGINEERING, 1995, 8 : 64 - 64
  • [26] T4 ENDONUCLEASE-VII CLEAVES DNA CONTAINING A CISPLATIN ADDUCT
    MURCHIE, AIH
    LILLEY, DMJ
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1993, 233 (01) : 77 - 85
  • [27] Endonuclease VII is a key component of the mismatch repair mechanism in bacteriophage T4
    Shcherbakov, Victor P.
    Plugina, Lidiya
    Shcherbakova, Tamara
    [J]. DNA REPAIR, 2011, 10 (04) : 356 - 362
  • [28] CLEAVAGE OF DOUBLE-CROSSOVER MOLECULES BY T4 ENDONUCLEASE-VII
    FU, TJ
    KEMPER, B
    SEEMAN, NC
    [J]. BIOCHEMISTRY, 1994, 33 (13) : 3896 - 3905
  • [29] X-ray structure of T4 endonuclease VII:: a DNA junction resolvase with a novel fold and unusual domain-swapped dimer architecture
    Raaijmakers, H
    Vix, O
    Töro, I
    Golz, S
    Kemper, B
    Suck, D
    [J]. EMBO JOURNAL, 1999, 18 (06) : 1447 - 1458
  • [30] INTERACTION OF A 4-WAY JUNCTION IN DNA WITH T4-ENDONUCLEASE-VII
    PARSONS, CA
    KEMPER, B
    WEST, SC
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1990, 265 (16) : 9285 - 9289