Structural models of the MscL gating mechanism

被引:181
|
作者
Sukharev, S
Durell, SR
Guy, HR
机构
[1] NCI, Lab Expt & Computat Biol, NIH, Bethesda, MD 20892 USA
[2] Univ Maryland, Dept Biol, College Pk, MD 20742 USA
关键词
D O I
10.1016/S0006-3495(01)75751-7
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Three-dimensional structural models of the mechanosensitive channel of large conductance, MscL, from the bacteria Mycobacterium tuberculosis and Escherichia coli were developed for closed, intermediate, and open conformations. The modeling began with the crystal structure of M. tuberculosis MscL, a homopentamer with two transmembrane a-helices, M1 and M2, per subunit. The first 12 N-terminal residues, not resolved in the crystal structure, were modeled as an amphipathic a-he(ix, called S1. A bundle of five parallel S1 helices are postulated to form a cytoplasmic gate. As membrane tension induces expansion, the tilts of M1 and M2 are postulated to increase as they move away from the axis of the pore. Substantial expansion is postulated to occur before the increased stress in the S1 to M1 linkers pulls the S1 bundle apart. During the opening transition, the S1 helices and C-terminus amphipathic a-helices, S3, are postulated to dock parallel to the membrane surface on the perimeter of the complex. The proposed gating mechanism reveals critical spatial relationships between the expandable transmembrane barrel formed by M1 and M2, the gate formed by S1 helices, and "strings" that link Sts to M1s. These models are consistent with numerous experimental results and modeling criteria.
引用
收藏
页码:917 / 936
页数:20
相关论文
共 50 条
  • [31] Models of the structure and gating mechanism of the NaChBac channel
    Shafrir, Y
    Shrivastava, IR
    Guy, HR
    BIOPHYSICAL JOURNAL, 2005, 88 (01) : 379A - 379A
  • [32] Gating-associated conformational changes in the mechanosensitive channel MscL
    Yoshimura, Keniiro
    Usukura, Jiro
    Sokabe, Masahiro
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (10) : 4033 - 4038
  • [33] Gating of the mechanosensitive channel MscL studied by steered molecular dynamics
    Gullingsrud, JR
    Schulten, K
    BIOPHYSICAL JOURNAL, 2003, 84 (02) : 21A - 21A
  • [34] Study of light-induced MscL gating by EPR spectroscopy
    Duygu Yilmaz
    Anna I. Dimitrova
    Martin Walko
    Armagan Kocer
    European Biophysics Journal, 2015, 44 : 557 - 565
  • [35] Gating of the mechanosensitive channel protein MscL: The interplay of membrane and protein
    Jeon, Jonggu
    Voth, Gregory A.
    BIOPHYSICAL JOURNAL, 2008, 94 (09) : 3497 - 3511
  • [36] On the role of the S1-M1 linker in the gating mechanism of the large mechanosensitive channel MscL.
    Chiang, CS
    Gray, P
    Betanzos, M
    Guy, HR
    Sukharev, S
    BIOPHYSICAL JOURNAL, 2001, 80 (01) : 110A - 110A
  • [37] Study of light-induced MscL gating by EPR spectroscopy
    Yilmaz, Duygu
    Dimitrova, Anna I.
    Walko, Martin
    Kocer, Armagan
    EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2015, 44 (07): : 557 - 565
  • [38] The gating mechanism of the bacterial mechanosensitive channel MscL revealed by molecular dynamics simulations From tension sensing to channel opening
    Sawada, Yasuyuki
    Murase, Masaki
    Sokabe, Masahiro
    CHANNELS, 2012, 6 (04) : 317 - 331
  • [39] Studies on sensitivity to tension and gating pathway of MscL by molecular dynamic simulation
    Jun-Yu Xie
    Guang-Hong Ding
    Acta Mechanica Sinica, 2013, 29 : 256 - 266
  • [40] Structural basis for gating mechanism of Pannexin 1 channel
    Mou, Luqiu
    Ke, Meng
    Song, Mengxiao
    Shan, Yuanyue
    Xiao, Qingjie
    Liu, Qingting
    Li, Jialu
    Sun, Ke
    Pu, Lei
    Guo, Li
    Geng, Jia
    Wu, Jianping
    Deng, Dong
    CELL RESEARCH, 2020, 30 (05) : 452 - 454