Two components of DNA replication-dependent LexA cleavage

被引:9
|
作者
Myka, Kamila K. [1 ]
Marians, Kenneth J. [1 ]
机构
[1] Mem Sloan Kettering Canc Ctr, Mol Biol Program, Sloan Kettering Inst, 1275 York Ave, New York, NY 10021 USA
关键词
DNA damage response; DNA replication; enzyme degradation; E; coli; gene regulation; SOS response; proteolytic cleavage; single-stranded DNA; LexA; Escherichia coli (E; coli); SINGLE-STRANDED-DNA; POLYMERASE-III HOLOENZYME; COLI RECA PROTEIN; ESCHERICHIA-COLI; LEADING-STRAND; BINDING-PROTEIN; LESION BYPASS; SSB PROTEIN; DUPLEX DNA; SOS;
D O I
10.1074/jbc.RA120.014224
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
Induction of the SOS response, a cellular system triggered by DNA damage in bacteria, depends on DNA replication for the generation of the SOS signal, ssDNA. RecA binds to ssDNA, forming filaments that stimulate proteolytic cleavage of the LexA transcriptional repressor, allowing expression of > 40 gene products involved in DNA repair and cell cycle regulation. Here, using a DNA replication system reconstitutedin vitroin tandem with a LexA cleavage assay, we studied LexA cleavage during DNA replication of both undamaged and base-damaged templates. Only a ssDNA?RecA filament supported LexA cleavage. Surprisingly, replication of an undamaged template supported levels of LexA cleavage like that induced by a template carrying two site-specific cyclobutane pyrimidine dimers. We found that two processes generate ssDNA that could support LexA cleavage. 1) During unperturbed replication, single-stranded regions formed because of stochastic uncoupling of the leading-strand DNA polymerase from the replication fork DNA helicase, and 2) on the damaged template, nascent leading-strand gaps were generated by replisome lesion skipping. The two pathways differed in that RecF stimulated LexA cleavage during replication of the damaged template, but not normal replication. RecF appears to facilitate RecA filament formation on the leading-strand ssDNA gaps generated by replisome lesion skipping.
引用
收藏
页码:10368 / 10379
页数:12
相关论文
共 50 条
  • [21] Expression of metazoan replication-dependent histone genes
    Jaeger, S
    Barends, S
    Giegé, R
    Eriani, G
    Martin, F
    BIOCHIMIE, 2005, 87 (9-10) : 827 - 834
  • [22] Stable G-quadruplex DNA structures promote replication-dependent genome instability
    Rider, S. Dean, Jr.
    Gadgil, Rujuta Yashodhan
    Hitch, David C.
    Damewood, French J.
    Zavada, Nathen
    Shanahan, Matilyn
    Alhawach, Venicia
    Shrestha, Resha
    Shin-ya, Kazuo
    Leffak, Michael
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2022, 298 (06)
  • [23] A replication-dependent passive mechanism modulates DNA demethylation in mouse primordial germ cells
    Ohno, Rika
    Nakayama, Megumi
    Naruse, Chie
    Okashita, Naoki
    Takano, Osamu
    Tachibana, Makoto
    Asano, Masahide
    Saitou, Mitinori
    Seki, Yoshiyuki
    DEVELOPMENT, 2013, 140 (14): : 2892 - 2903
  • [24] DNA replication-dependent binding of CTCF plays a critical role in adenovirus genome functions
    Komatsu, Tetsuro
    Sekiya, Takeshi
    Nagata, Kyosuke
    SCIENTIFIC REPORTS, 2013, 3
  • [25] MMS1 protects against replication-dependent DNA damage in Saccharomyces cerevisiae
    T. Hryciw
    M. Tang
    T. Fontanie
    W. Xiao
    Molecular Genetics and Genomics, 2002, 266 : 848 - 857
  • [26] Replication-dependent and -independent responses of RAD18 to DNA damage in human cells
    Nakajima, Satoshi
    Lan, Li
    Kanno, Shin-ichiro
    Usami, Noriko
    Kobayashi, Katsumi
    Mori, Masahiko
    Shiomi, Tadahiro
    Yasui, Akira
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (45) : 34687 - 34695
  • [27] Mechanism of DNA replication-dependent transcriptional activation of the acetylcholinesterase gene in the Ciona intestinalis embryo
    Kataoka, Yumiko
    Mishina, Ryo
    Fujiwara, Shigeki
    DEVELOPMENT GROWTH & DIFFERENTIATION, 2009, 51 (09) : 841 - 850
  • [28] MMS1 protects against replication-dependent DNA damage in Saccharomyces cerevisiae
    Hryciw, T
    Tang, M
    Fontanie, T
    Xiao, W
    MOLECULAR GENETICS AND GENOMICS, 2002, 266 (05) : 848 - 857
  • [29] Replication-dependent recruitment of the β-subunit of DNA polymerase III from cytosolic spaces to replication forks in Escherichia coli
    Onogi, T
    Ohsumi, K
    Katayama, T
    Hiraga, S
    JOURNAL OF BACTERIOLOGY, 2002, 184 (03) : 867 - 870
  • [30] Two types of polyadenated mRNAs are synthesized from Drosophila replication-dependent histone genes
    Akhmanova, A
    Miedema, K
    Kremer, H
    Hennig, W
    EUROPEAN JOURNAL OF BIOCHEMISTRY, 1997, 244 (02): : 294 - 300