Structure of a CLC chloride ion channel by cryo-electron microscopy

被引:0
|
作者
Eunyong Park
Ernest B. Campbell
Roderick MacKinnon
机构
[1] Laboratory of Molecular Neurobiology and Biophysics and Howard Hughes Medical Institute,
[2] The Rockefeller University,undefined
来源
Nature | 2017年 / 541卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
CLC proteins transport chloride (Cl−) ions across cellular membranes to regulate muscle excitability, electrolyte movement across epithelia, and acidification of intracellular organelles. Some CLC proteins are channels that conduct Cl− ions passively, whereas others are secondary active transporters that exchange two Cl− ions for one H+. The structural basis underlying these distinctive transport mechanisms is puzzling because CLC channels and transporters are expected to share the same architecture on the basis of sequence homology. Here we determined the structure of a bovine CLC channel (CLC-K) using cryo-electron microscopy. A conserved loop in the Cl− transport pathway shows a structure markedly different from that of CLC transporters. Consequently, the cytosolic constriction for Cl− passage is widened in CLC-K such that the kinetic barrier previously postulated for Cl−/H+ transporter function would be reduced. Thus, reduction of a kinetic barrier in CLC channels enables fast flow of Cl− down its electrochemical gradient.
引用
收藏
页码:500 / 505
页数:5
相关论文
共 50 条
  • [41] Cryo-electron microscopy structure of the lysosomal calcium-permeable channel TRPML3
    Marscha Hirschi
    Mark A. Herzik Jr
    Jinhong Wie
    Yang Suo
    William F. Borschel
    Dejian Ren
    Gabriel C. Lander
    Seok-Yong Lee
    Nature, 2017, 550 : 411 - 414
  • [42] THE STRUCTURE-ANALYSIS OF THE PURPLE MEMBRANE BY CRYO-ELECTRON MICROSCOPY
    SAKATA, K
    FUJIYOSHI, Y
    MORIKAWA, K
    KIMURA, Y
    JOURNAL OF ELECTRON MICROSCOPY, 1989, 38 (04): : 294 - 294
  • [43] Cryo-electron microscopy structure of humanABCB6transporter
    Wang, Chunyu
    Cao, Can
    Wang, Nan
    Wang, Xiangxi
    Wang, Xianping
    Zhang, Xuejun C.
    PROTEIN SCIENCE, 2020, 29 (12) : 2363 - 2374
  • [44] Cryo-electron microscopy structure and translocation mechanism of the crenarchaeal ribosome
    Wang, Ying-Hui
    Dai, Hong
    Zhang, Ling
    Wu, Yun
    Wang, Jingfen
    Wang, Chen
    Xu, Cai-Huang
    Hou, Hai
    Yang, Bing
    Zhu, Yongqun
    Zhang, Xing
    Zhou, Jie
    NUCLEIC ACIDS RESEARCH, 2023, 51 (17) : 8909 - 8924
  • [45] Exploring skin structure using cryo-electron microscopy and tomography
    Norlen, Lars
    EUROPEAN JOURNAL OF DERMATOLOGY, 2008, 18 (03) : 279 - 284
  • [46] Amyloid fibril structure of α-synuclein determined by cryo-electron microscopy
    Yaowang Li
    Chunyu Zhao
    Feng Luo
    Zhenying Liu
    Xinrui Gui
    Zhipu Luo
    Xiang Zhang
    Dan Li
    Cong Liu
    Xueming Li
    Cell Research, 2018, 28 : 897 - 903
  • [47] Cryo-electron microscopy structure of an archaeal ribonuclease P holoenzyme
    Wan, Futang
    Wang, Qianmin
    Tan, Jing
    Tan, Ming
    Chen, Juan
    Shi, Shaohua
    Lan, Pengfei
    Wu, Jian
    Lei, Ming
    NATURE COMMUNICATIONS, 2019, 10 (1)
  • [48] Structure Determination of Small Macromolecular Complexes by Cryo-Electron Microscopy
    Bartesaghi, Alberto
    Pierson, Jason
    Rao, Prashant
    Banerjee, Soojay
    Borgnia, Mario
    Yu, Lingbo
    Earl, Lesley
    Alink, Michael
    Milne, Jacqueline
    Subramaniam, Sriram
    BIOPHYSICAL JOURNAL, 2014, 106 (02) : 601A - 601A
  • [49] Cryo-electron microscopy of the giant mimivirus
    Xiao, CA
    Chipman, PR
    Battisti, AJ
    Bowman, VD
    Renesto, P
    Raoult, D
    Rossmann, MG
    JOURNAL OF MOLECULAR BIOLOGY, 2005, 353 (03) : 493 - 496
  • [50] The resolution revolution in cryo-electron microscopy
    Neumann, Emmanuelle
    Estrozi, Leandro Farias
    Effantin, Gregory
    Breyton, Cecile
    Schoehn, Guy
    M S-MEDECINE SCIENCES, 2017, 33 (12): : 1111 - 1117