ATP-dependent DNA ligases

被引:0
|
作者
Ina V Martin
Stuart A MacNeill
机构
[1] Institute of Cell and Molecular Biology,Wellcome Trust Centre for Cell Biology
[2] University of Edinburgh,undefined
关键词
Mitochondrial Target Sequence; BRCT Domain; Phosphodiester Backbone; Okazaki Fragment; Germline Tissue;
D O I
10.1186/gb-2002-3-4-reviews3005
中图分类号
学科分类号
摘要
By catalyzing the joining of breaks in the phosphodiester backbone of duplex DNA, DNA ligases play a vital role in the diverse processes of DNA replication, recombination and repair. Three related classes of ATP-dependent DNA ligase are readily apparent in eukaryotic cells. Enzymes of each class comprise catalytic and non-catalytic domains together with additional domains of varying function. DNA ligase I is required for the ligation of Okazaki fragments during lagging-strand DNA synthesis, as well as for several DNA-repair pathways; these functions are mediated, at least in part, by interactions between DNA ligase I and the sliding-clamp protein PCNA. DNA ligase III, which is unique to vertebrates, functions both in the nucleus and in mitochondria. Two distinct isoforms of this enzyme, differing in their carboxy-terminal sequences, are produced by alternative splicing: DNA ligase IIIα has a carboxy-terminal BRCT domain that interacts with the mammalian DNA-repair factor XrccI, but both α and β isoforms have an amino-terminal zinc-finger motif that appears to play a role in the recognition of DNA secondary structures that resemble intermediates in DNA metabolism. DNA ligase IV is required for DNA non-homologous end joining pathways, including recombination of the V(D)J immunoglobulin gene segments in cells of the mammalian immune system. DNA ligase IV forms a tight complex with Xrcc4 through an interaction motif located between a pair of carboxy-terminal BRCT domains in the ligase. Recent structural studies have shed light on the catalytic function of DNA ligases, as well as illuminating protein-protein interactions involving DNA ligases IIIα and IV.
引用
收藏
相关论文
共 11 条
  • [1] DNA ligases in the repair and replication of DNA
    Timson, DJ
    Singleton, MR
    Wigley, DB
    MUTATION RESEARCH-DNA REPAIR, 2000, 460 (3-4): : 301 - 318
  • [2] DNA structure dependent checkpoints as regulators of DNA repair
    Carr, AM
    DNA REPAIR, 2002, 1 (12) : 983 - 994
  • [3] Characterization of mimivirus NAD+-dependent DNA ligase
    Benarroch, Delphine
    Shuman, Stewart
    VIROLOGY, 2006, 353 (01) : 133 - 143
  • [4] DNA Damage-Induced Cytotoxicity Is Dissociated from BRCA1's DNA Repair Function but Is Dependent on Its Cytosolic Accumulation
    Wang, Hong
    Yang, Eddy S.
    Jiang, Juhong
    Nowsheen, Somaira
    Xia, Fen
    CANCER RESEARCH, 2010, 70 (15) : 6258 - 6267
  • [5] The molecular basis of ATM-dependent dimerization of the Mdc1 DNA damage checkpoint mediator
    Jungmichel, Stephanie
    Clapperton, Julie A.
    Lloyd, Janette
    Hari, Flurina J.
    Spycher, Christoph
    Pavic, Lucijana
    Li, Jiejin
    Haire, Lesley F.
    Bonalli, Mario
    Larsen, Dorthe H.
    Lukas, Claudia
    Lukas, Jiri
    MacMillan, Derek
    Nielsen, Michael L.
    Stucki, Manuel
    Smerdon, Stephen J.
    NUCLEIC ACIDS RESEARCH, 2012, 40 (09) : 3913 - 3928
  • [6] Phosphorylation-dependent assembly of DNA damage response systems and the central roles of TOPBP1
    Day, Matthew
    Oliver, Antony W.
    Pearl, Laurence H.
    DNA REPAIR, 2021, 108
  • [7] Accumulation of Pax2 Transactivation Domain Interaction Protein (PTIP) at Sites of DNA Breaks via RNF8-dependent Pathway Is Required for Cell Survival after DNA Damage
    Gong, Zihua
    Cho, Young-Wook
    Kim, Ja-Eun
    Ge, Kai
    Chen, Junjie
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (11) : 7284 - 7293
  • [8] NAD+-dependent DNA ligase (Rv3014c) from M-tuberculosis:: Strategies for inhibitor design
    Dube, Divya
    Kukshal, Vandna
    Srivastava, Sandeep Kumar
    Tripathi, Rama Pati
    Ramachandran, Ravishankar
    MEDICINAL CHEMISTRY RESEARCH, 2008, 17 (2-7) : 189 - 198
  • [9] NAD+-dependent DNA ligase (Rv3014c) from M. tuberculosis: Strategies for inhibitor design
    Divya Dube
    Vandna Kukshal
    Sandeep Kumar Srivastava
    Rama Pati Tripathi
    Ravishankar Ramachandran
    Medicinal Chemistry Research, 2008, 17 : 189 - 198
  • [10] NAD+-dependent DNA ligase (Rv3014c) from Mycobacterium tuberculosis:: Novel structure-function relationship and identification of a specific inhibitor
    Srivastava, Sandeep Kumar
    Dube, Divya
    Kukshal, Vandana
    Jha, Ashok Kumar
    Hajela, Kanchan
    Ramachandran, Ravishankar
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2007, 69 (01) : 97 - 111