Mutational Analysis of Redβ Single Strand Annealing Protein: Roles of the 14 Lysine Residues in DNA Binding and Recombination In Vivo

被引:4
|
作者
Zakharova, Katerina [1 ]
Caldwell, Brian J. [1 ,2 ]
Ta, Shalya [1 ]
Wheat, Carter T. [1 ,2 ]
Bell, Charles E. [1 ,2 ,3 ]
机构
[1] Ohio State Univ, Dept Biol Chem & Pharmacol, Columbus, OH 43210 USA
[2] Ohio State Univ, Ohio State Biochem Program, Columbus, OH 43210 USA
[3] Ohio State Univ, Dept Chem & Biochem, Columbus, OH 43210 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
single-strand annealing; DNA recombination; DNA repair; homologous recombination; bacteriophage lambda; recombineering; CRYSTAL-STRUCTURE; DOMAIN-STRUCTURE; STRUCTURAL BASIS; REPAIR; RAD52; DEINOCOCCUS; EXONUCLEASE; SUGGEST; COMPLEX;
D O I
10.3390/ijms22147758
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
Red beta is a 261 amino acid protein from bacteriophage lambda that promotes a single-strand annealing (SSA) reaction for repair of double-stranded DNA (dsDNA) breaks. While there is currently no high-resolution structure available for Red beta, models of its DNA binding domain (residues 1-188) have been proposed based on homology with human Rad52, and a crystal structure of its C-terminal domain (CTD, residues 193-261), which binds to lambda exonuclease and E. coli single-stranded DNA binding protein (SSB), has been determined. To evaluate these models, the 14 lysine residues of Red beta were mutated to alanine, and the variants tested for recombination in vivo and DNA binding and annealing in vitro. Most of the lysines within the DNA binding domain, including K36, K61, K111, K132, K148, K154, and K172, were found to be critical for DNA binding in vitro and recombination in vivo. By contrast, none of the lysines within the CTD, including K214, K245, K251, K253, and K258 were required for DNA binding in vitro, but two, K214 and K253, were critical for recombination in vivo, likely due to their involvement in binding to SSB. K61 was identified as a residue that is critical for DNA annealing, but not for initial ssDNA binding, suggesting a role in binding to the second strand of DNA incorporated into the complex. The K148A variant, which has previously been shown to be defective in oligomer formation, had the lowest affinity for ssDNA, and was the only variant that was completely non-cooperative, suggesting that ssDNA binding is coupled to oligomerization.
引用
收藏
页数:17
相关论文
共 24 条
  • [1] RecO Protein Initiates DNA Recombination and Strand Annealing through Two Alternative DNA Binding Mechanisms
    Ryzhikov, Mikhail
    Gupta, Richa
    Glickman, Michael
    Korolev, Sergey
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (42) : 28846 - 28855
  • [2] Single strand DNA binding and annealing activities in the yeast recombination factor Rad59
    Petukhova, G
    Stratton, SA
    Sung, P
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (48) : 33839 - 33842
  • [3] Oligomeric complexes formed by Redβ single strand annealing protein in its different DNA bound states
    Caldwell, Brian J.
    Norris, Andrew
    Zakharova, Ekaterina
    Smith, Christopher E.
    Wheat, Carter T.
    Choudhary, Deepanshu
    Sotomayor, Marcos
    Wysocki, Vicki H.
    Bell, Charles E.
    NUCLEIC ACIDS RESEARCH, 2021, 49 (06) : 3441 - 3460
  • [4] DNA recombination and RNA cleavage activities of the Flp protein: Roles of two histidine residues in the orientation and activation of the nucleophile for strand cleavage
    Grainge, I
    Lee, J
    Xu, CJ
    Jayaram, M
    JOURNAL OF MOLECULAR BIOLOGY, 2001, 314 (04) : 717 - 733
  • [5] Domain Structure of the Redo Single-Strand Annealing Protein: the C-terminal Domain is Required for Fine-Tuning DNA-binding Properties, Interaction with the Exonuclease Partner, and Recombination in vivo
    Smith, Christopher E.
    Bell, Charles E.
    JOURNAL OF MOLECULAR BIOLOGY, 2016, 428 (03) : 561 - 578
  • [6] In Vivo Occupancy of Mitochondrial Single-Stranded DNA Binding Protein Supports the Strand Displacement Mode of DNA Replication
    Fuste, Javier Miralles
    Shi, Yonghong
    Wanrooij, Sjoerd
    Zhu, Xuefeng
    Jemt, Elisabeth
    Persson, Orjan
    Sabouri, Nasim
    Gustafsson, Claes M.
    Falkenberg, Maria
    PLOS GENETICS, 2014, 10 (12)
  • [7] Structural Basis for the Interaction of Redb Single-Strand Annealing Protein with Escherichia coli Single-Stranded DNA-Binding Protein
    Zakharova, Katerina
    Liu, Mengqi
    Greenwald, Jacelyn R.
    Caldwell, Brian C.
    Qi, Zihao
    Wysocki, Vicki H.
    Bell, Charles E.
    JOURNAL OF MOLECULAR BIOLOGY, 2024, 436 (11)
  • [8] Systematic Discovery, In Vivo Delivery, and DNA Repair Mechanism of Single-Strand Annealing Protein for Precision Integration of Large DNA Sequences
    Cong, Le
    Yin, Di
    Xu, Guangxue
    Qu, Yuanhao Jerry
    Wang, Chengkun
    Wang, Xiaotong
    Johnson, William Arthur
    Filsinger, Gabriel
    Wannier, Tim
    Church, George M.
    Phoon, Lai Yee
    Gao, Boya
    Lan, Li
    MOLECULAR THERAPY, 2024, 32 (04) : 9 - 10
  • [9] Potent DNA Strand Annealing Mediated by the T7 Single-Stranded DNA Binding Protein gp2.5
    Hernandez, Alfredo J.
    Richardson, Charles C.
    FASEB JOURNAL, 2017, 31
  • [10] Single-strand DNA-binding protein suppresses illegitimate recombination in Escherichia coli, acting in synergy with RecQ helicase
    Feliciello, Isidoro
    Ljubic, Sven
    Dermic, Edyta
    Ivankovic, Sinisa
    Zahradka, Davor
    Dermic, Damir
    SCIENTIFIC REPORTS, 2024, 14 (01):