DNA strand cleavage is required for replication fork arrest by a frozen topoisomerase-quinolone-DNA ternary complex

被引:100
|
作者
Hiasa, H
Yousef, DO
Marians, KJ
机构
[1] MEM SLOAN KETTERING CANC CTR,PROGRAM MOL BIOL,NEW YORK,NY 10021
[2] CORNELL UNIV,GRAD SCH MED SCI,PROGRAM BIOCHEM,NEW YORK,NY 10021
[3] CORNELL UNIV,GRAD SCH MED SCI,PROGRAM STRUCT BIOL,NEW YORK,NY 10021
[4] CORNELL UNIV,GRAD SCH MED SCI,PROGRAM MOL BIOL,NEW YORK,NY 10021
关键词
D O I
10.1074/jbc.271.42.26424
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 formation of a topoisomerase-quinolone-DNA ternary complex leads to cell death, We show here that an active strand breakage and reunion activity is required for formation of a norfloxacin-topoisomerase IV-DNA ternary complex that can arrest the progression of replication forks in vitro, Mutant topoisomerases containing either an active site mutation, a quinolone resistance-conferring mutation, or both, could all bind DNA as well as the wild type, but unlike the wild-type, could not halt replication fork progression, The collision between the replication fork and the frozen topoisomerase converted the cleavable complex to a nonreversible form but did not generate a double-stranded break. Thus, the cytotoxicity of this class of topoisomerase inhibitors likely results from a two-step process: (i) conversion of the frozen topoisomerase-quinolone-DNA ternary complex to an unreversible form; and (ii) generation of a double-strand break by subsequent denaturation of the topoisomerase, perhaps by an aborted repair attempt.
引用
收藏
页码:26424 / 26429
页数:6
相关论文
共 50 条
  • [21] The RuvAB branch migration complex can displace topoisomerase IV•quinolone•DNA ternary complexes
    Shea, ME
    Hiasa, H
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (48) : 48485 - 48490
  • [22] DISRUPTION OF A TOPOISOMERASE-DNA CLEAVAGE COMPLEX BY A DNA HELICASE
    HOWARD, MT
    NEECE, SH
    MATSON, SW
    KREUZER, KN
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (25) : 12031 - 12035
  • [23] Understanding the mechanisms that repair DNA double-strand breaks arising from replication fork arrest
    Sasaki, Mariko
    Kobayashi, Takehiko
    GENES & GENETIC SYSTEMS, 2016, 91 (06) : 341 - 341
  • [24] Arrest of replication fork progression at sites of topoisomerase II-mediated DNA cleavage in human leukemia CEM cells incubated with VM-26
    Catapano, CV
    Carbone, GMR
    Pisani, F
    Qiu, J
    Fernandes, DJ
    BIOCHEMISTRY, 1997, 36 (19) : 5739 - 5748
  • [25] Cleavage of a model DNA replication fork by restriction enzymes in vitro
    Ishikawa, Ken
    Handa, Naofumi
    Kobayashi, Ichizo
    GENES & GENETIC SYSTEMS, 2009, 84 (06) : 433 - 433
  • [26] Replication fork arrest, recombination and the maintenance of ribosomal DNA stability
    Tsang, Ellen
    Carr, Antony M.
    DNA REPAIR, 2008, 7 (10) : 1613 - 1623
  • [27] CLEAVAGE OF DOUBLE-STRAND DNA BY BLEOMYCIN DERIVATIVES OF OLIGONUCLEOTIDES FORMING A TERNARY COMPLEX
    SERGEEV, DS
    GODOVIKOVA, TS
    ZARYTOVA, VF
    BIOORGANICHESKAYA KHIMIYA, 1995, 21 (03): : 188 - 196
  • [28] THE BACTERIOPHAGE-T4 DNA-REPLICATION FORK - ONLY DNA HELICASE IS REQUIRED FOR LEADING STRAND DNA-SYNTHESIS BY THE DNA-POLYMERASE HOLOENZYME
    CHA, TA
    ALBERTS, BM
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1989, 264 (21) : 12220 - 12225
  • [29] Reorganization of terminator DNA upon binding replication terminator protein: Implications for the functional replication fork arrest complex
    Kralicek, AV
    Wilson, PK
    Ralston, GB
    Wake, RG
    King, GF
    NUCLEIC ACIDS RESEARCH, 1997, 25 (03) : 590 - 596
  • [30] The DNA gyrase-quinolone complex - ATP hydrolysis and the mechanism of DNA cleavage
    Kampranis, SC
    Maxwell, A
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (35) : 22615 - 22626