Advances in understanding DNA processing and protection at stalled replication forks

被引:112
|
作者
Rickman, Kimberly [1 ]
Smogorzewska, Agata [1 ]
机构
[1] Rockefeller Univ, Lab Genome Maintenance, 1230 York Ave, New York, NY 10021 USA
来源
JOURNAL OF CELL BIOLOGY | 2019年 / 218卷 / 04期
基金
美国国家卫生研究院;
关键词
CELL NUCLEAR ANTIGEN; DOUBLE-STRAND BREAKS; GENOME STABILITY; MRE11-DEPENDENT DEGRADATION; NASCENT DNA; HUMAN HLTF; RAD51; REVERSAL; RESTART; BRCA2;
D O I
10.1083/jcb.201809012
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The replisome, the molecular machine dedicated to copying DNA, encounters a variety of obstacles during S phase. Without a proper response to this replication stress, the genome becomes unstable, leading to disease, including cancer. The immediate response is localized to the stalled replisome and includes protection of the nascent DNA. A number of recent studies have provided insight into the factors recruited to and responsible for protecting stalled replication forks. In response to replication stress, the SNF2 family of DNA translocases has emerged as being responsible for remodeling replication forks in vivo. The protection of stalled replication forks requires the cooperation of RAD51, BRCA1, BRCA2, and many other DNA damage response proteins. In the absence of these fork protection factors, fork remodeling renders them vulnerable to degradation by nucleases and helicases, ultimately compromising genome integrity. In this review, we focus on the recent progress in understanding the protection, processing, and remodeling of stalled replication forks in mammalian cells.
引用
收藏
页码:1096 / 1107
页数:12
相关论文
共 50 条
  • [31] Regulation of the replication bypass pathways at stalled replication forks in Saccharomyces cerevisiae
    Ohya, Tomoko
    Hishida, Takashi
    GENES & GENETIC SYSTEMS, 2007, 82 (06) : 544 - 544
  • [32] Sumoylation of PCNA: Wrestling with recombination at stalled replication forks
    Watts, FZ
    DNA REPAIR, 2006, 5 (03) : 399 - 403
  • [33] DO STALLED REPLICATION FORKS SYNTHESIZE A SPECIFIC ALARMONE
    VARSHAVSKY, A
    JOURNAL OF THEORETICAL BIOLOGY, 1983, 105 (04) : 707 - 714
  • [34] How yeast cells deal with stalled replication forks
    Arbel, Matan
    Liefshitz, Batia
    Kupiec, Martin
    CURRENT GENETICS, 2020, 66 (05) : 911 - 915
  • [35] How yeast cells deal with stalled replication forks
    Matan Arbel
    Batia Liefshitz
    Martin Kupiec
    Current Genetics, 2020, 66 : 911 - 915
  • [36] Dynamics of the Interaction of RecG Protein with Stalled Replication Forks
    Sun, Zhiqiang
    Hashemi, Mohtadin
    Warren, Galina
    Bianco, Piero R.
    Lyubchenko, Yuri L.
    BIOCHEMISTRY, 2018, 57 (13) : 1967 - 1976
  • [37] The annealing helicase HARP protects stalled replication forks
    Yuan, Jingsong
    Ghosal, Gargi
    Chen, Junjie
    GENES & DEVELOPMENT, 2009, 23 (20) : 2394 - 2399
  • [38] MOF Suppresses Replication Stress and Contributes to Resolution of Stalled Replication Forks
    Singh, Dharmendra Kumar
    Pandita, Raj K.
    Singh, Mayank
    Chakraborty, Sharmistha
    Hambarde, Shashank
    Ramnarain, Deepti
    Charaka, Vijaya
    Ahmed, Kazi Mokim
    Hunt, Clayton R.
    Pandita, Tej K.
    MOLECULAR AND CELLULAR BIOLOGY, 2018, 38 (06)
  • [39] Replisome assembly and the direct restart of stalled replication forks
    Ryan C. Heller
    Kenneth J. Marians
    Nature Reviews Molecular Cell Biology, 2006, 7 : 932 - 943
  • [40] DNA polymerase κ-dependent DNA synthesis at stalled replication forks is important for CHK1 activation
    Betous, Remy
    Pillaire, Marie-Jeanne
    Pierini, Laura
    van der Laan, Siem
    Recolin, Benedicte
    Ohl-Seguy, Emma
    Guo, Caixia
    Niimi, Naoko
    Gruz, Petr
    Nohmi, Takehiko
    Friedberg, Errol
    Cazaux, Christophe
    Maiorano, Domenico
    Hoffmann, Jean-Sebastien
    EMBO JOURNAL, 2013, 32 (15): : 2172 - 2185