Mutational analysis of a site-specific recombinase: characterization of the catalytic and dimerization domains of the β recombinase of pSM19035

被引:0
|
作者
I. Canosa
S. Ayora
F. Rojo
J. C. Alonso
机构
[1] Centro Nacional de Biotecnología,
[2] C.S.I.C.,undefined
[3] Campus de la Universidad Autónoma de Madrid,undefined
[4] Cantoblanco,undefined
[5] E-28049 Madrid,undefined
[6] Spain,undefined
[7] Max-Planck-Institut für molekulare Genetik,undefined
[8] Ihnestrasse 73,undefined
[9] D-14195 Berlin,undefined
[10] Germany,undefined
来源
关键词
Key words Site-specific recombination; DNA binding proteins; Gram positive-bacteria; Protein-DNA interactions; DNA curvature;
D O I
暂无
中图分类号
学科分类号
摘要
The β recombinase encoded by the streptococcal plasmid pSM19035, which shows 28 to 34% identity with DNA resolvases and DNA invertases, can catalyze formation of deletions or inversions between properly oriented target sites. We have constructed a number of site-directed mutations at residues that are conserved between the β protein and other DNA recombinases of the resolvase/invertase family. The analysis of the recombination and DNA-binding ability of each mutant protein shows that the mutations affect the catalytic activity and, in two cases, the dimerization of the protein. The results suggest that the β protein probably mediates recombination by a catalytic mechanism similar to that proposed for the resolvase/invertase family. Since the β recombinase differs from DNA resolvases and DNA invertases in its lack of bias towards either of these reactions, the results presented support the hypothesis that its unique properties might depend on details of the architecture or assembly of the recombination complex. In addition, two β protein mutants that can no longer form dimers in solution have provided new insights into the way the protein binds to DNA
引用
收藏
页码:467 / 476
页数:9
相关论文
共 50 条
  • [31] FUNCTIONAL-ANALYSIS OF BOX-I MUTATIONS IN YEAST SITE-SPECIFIC RECOMBINASE-FLP AND RECOMBINASE-R - PAIRWISE COMPLEMENTATION WITH RECOMBINASE VARIANTS LACKING THE ACTIVE-SITE TYROSINE
    CHEN, JW
    EVANS, BR
    YANG, SH
    ARAKI, H
    OSHIMA, Y
    JAYARAM, M
    MOLECULAR AND CELLULAR BIOLOGY, 1992, 12 (09) : 3757 - 3765
  • [32] Structure of Cre recombinase complexed with DNA in a site-specific recombination synapse
    Guo, F
    Gopaul, DN
    VanDuyne, GD
    NATURE, 1997, 389 (6646) : 40 - 46
  • [33] Structure of Cre recombinase complexed with DNA in a site-specific recombination synapse
    Feng Guo
    Deshmukh N. Gopaul
    Gregory D. Van Duyne
    Nature, 1997, 389 : 40 - 46
  • [34] THE FLP RECOMBINASE OF YEAST CATALYZES SITE-SPECIFIC RECOMBINATION IN THE DROSOPHILA GENOME
    GOLIC, KG
    LINDQUIST, S
    CELL, 1989, 59 (03) : 499 - 509
  • [35] RESOLUTION OF SYNTHETIC CHI-STRUCTURES BY THE FLP SITE-SPECIFIC RECOMBINASE
    DIXON, JE
    SADOWSKI, PD
    JOURNAL OF MOLECULAR BIOLOGY, 1993, 234 (03) : 522 - 533
  • [36] Xer site-specific recombination - DNA strand rejoining by recombinase XerC
    Grainge, I
    Sherratt, DJ
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (10) : 6763 - 6769
  • [37] Regulation of the Klebsiella pneumoniae Kpc fimbriae by the site-specific recombinase Kpcl
    Wu, Chien-Chen
    Huang, Ying-Jung
    Fung, Chang-Phone
    Peng, Hwei-Ling
    MICROBIOLOGY-SGM, 2010, 156 : 1983 - 1992
  • [38] A unique, bifunctional site-specific DNA recombinase from Mycoplasma pulmonis
    Sitaraman, R
    Denison, AM
    Dybvig, K
    MOLECULAR MICROBIOLOGY, 2002, 46 (04) : 1033 - 1040
  • [39] Development of Site-specific Recombinase Technology for Targeted Integration with Marker Removal
    Thomson, James
    Thilmony, Roger
    IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-PLANT, 2018, 54 (04) : 485 - 485
  • [40] Genome engineering of Toxoplasma gondii using the site-specific recombinase Cre
    Brecht, S
    Erdhart, H
    Soete, M
    Soldati, D
    GENE, 1999, 234 (02) : 239 - 247