Cryo-EM Structures of the Magnesium Channel CorA Reveal Symmetry Break upon Gating

被引:93
|
作者
Matthies, Doreen [1 ]
Dalmas, Olivier [2 ]
Borgnia, Mario J. [1 ]
Dominik, Pawel K. [2 ]
Merk, Alan [1 ]
Rao, Prashant [1 ]
Reddy, Bharat G. [2 ]
Islam, Shahidul [2 ]
Bartesaghi, Alberto [1 ]
Perozo, Eduardo [2 ]
Subramaniam, Sriram [1 ]
机构
[1] NCI, Cell Biol Lab, Ctr Canc Res, NIH, Bethesda, MD 20892 USA
[2] Univ Chicago, Dept Biochem & Mol Biol, Inst Biophys Dynam, Chicago, IL 60637 USA
关键词
ACETYLCHOLINE-RECEPTOR; MOLECULAR-MECHANISM; BETA-GALACTOSIDASE; CRYSTAL-STRUCTURE; TRANSPORT; SYSTEM; VISUALIZATION; SELECTIVITY; ACTIVATION; INSIGHTS;
D O I
10.1016/j.cell.2015.12.055
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
CorA, the major Mg2+ uptake system in prokaryotes, is gated by intracellular Mg2+ (K-D similar to 1-2 mM). X-ray crystallographic studies of CorA show similar conformations under Mg2+-bound and Mg2+-free conditions, but EPR spectroscopic studies reveal large Mg2+-driven quaternary conformational changes. Here, we determined cryo-EM structures of CorA in the Mg2+-bound closed conformation and in two open Mg2+-free states at resolutions of 3.8, 7.1, and 7.1 angstrom, respectively. In the absence of bound Mg2+, four of the five subunits are displaced to variable extents (similar to 10-25 angstrom) by hinge-like motions as large as similar to 35 degrees at the stalk helix. The transition between a single 5-fold symmetric closed state and an ensemble of low Mg2+, open, asymmetric conformational states is, thus, the key structural signature of CorA gating. This mechanism is likely to apply to other structurally similar divalent ion channels.
引用
收藏
页码:747 / 756
页数:10
相关论文
共 50 条
  • [31] Cryo-EM structures reveal the chromatin remodelling mechanism of DDM1
    Liu, Yue
    Du, Jiamu
    NATURE PLANTS, 2024, 10 (03) : 358 - 359
  • [32] Atomic cryo-EM structures of viruses
    Jiang, Wen
    Tang, Liang
    CURRENT OPINION IN STRUCTURAL BIOLOGY, 2017, 46 : 122 - 129
  • [33] Quantifying the Resolvability in Cryo-EM Structures
    Chiu, Wah
    Pintilie, Greg
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2019, 75 : A353 - A353
  • [34] Cryo-EM structures of the TTYH family reveal a novel architecture for lipid interactions
    Sukalskaia, Anastasiia
    Straub, Monique S.
    Deneka, Dawid
    Sawicka, Marta
    Dutzler, Raimund
    NATURE COMMUNICATIONS, 2021, 12 (01)
  • [35] Averaging Orientations with Molecular Symmetry in Cryo-EM
    Zhang, Qi
    Bao, Chenglong
    Lin, Hai
    Hu, Mingxu
    SIAM JOURNAL ON IMAGING SCIENCES, 2024, 17 (04): : 2174 - 2195
  • [36] Cryo-EM structures of the TTYH family reveal a novel architecture for lipid interactions
    Anastasiia Sukalskaia
    Monique S. Straub
    Dawid Deneka
    Marta Sawicka
    Raimund Dutzler
    Nature Communications, 12
  • [37] Replication and validation of cryo-EM structures
    Glaeser, Robert M.
    JOURNAL OF STRUCTURAL BIOLOGY, 2013, 184 (02) : 379 - 380
  • [38] Cryo-EM structures of tau filaments
    Scheres, Sjors H. W.
    Zhang, Wenjuan
    Falcon, Benjamin
    Goedert, Michel
    CURRENT OPINION IN STRUCTURAL BIOLOGY, 2020, 64 : 17 - 25
  • [39] Cryo-EM structures reveal the activation and substrate recognition mechanism of human enteropeptidase
    Yang, Xiaoli
    Ding, Zhanyu
    Peng, Lisi
    Song, Qiuyue
    Zhang, Deyu
    Cui, Fang
    Xia, Chuanchao
    Li, Keliang
    Yin, Hua
    Li, Shiyu
    Li, Zhaoshen
    Huang, Haojie
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [40] Cryo-EM Structures of CusA Reveal a Mechanism of Metal-Ion Export
    Moseng, Mitchell A.
    Lyu, Meinan
    Pipatpolkai, Tanadet
    Glaza, Przemyslaw
    Emerson, Corey C.
    Stewart, Phoebe L.
    Stansfeld, Phillip J.
    Yu, Edward W.
    MBIO, 2021, 12 (02):