Structural basis for Na+ transport mechanism by a light-driven Na+ pump

被引:0
|
作者
Hideaki E. Kato
Keiichi Inoue
Rei Abe-Yoshizumi
Yoshitaka Kato
Hikaru Ono
Masae Konno
Shoko Hososhima
Toru Ishizuka
Mohammad Razuanul Hoque
Hirofumi Kunitomo
Jumpei Ito
Susumu Yoshizawa
Keitaro Yamashita
Mizuki Takemoto
Tomohiro Nishizawa
Reiya Taniguchi
Kazuhiro Kogure
Andrés D. Maturana
Yuichi Iino
Hiromu Yawo
Ryuichiro Ishitani
Hideki Kandori
Osamu Nureki
机构
[1] Graduate School of Science,Department of Biological Sciences
[2] The University of Tokyo,Department of Frontier Materials
[3] Nagoya Institute of Technology,Department of Developmental Biology and Neuroscience
[4] OptoBioTechnology Research Center,Department of Bioengineering Sciences
[5] Nagoya Institute of Technology,undefined
[6] PRESTO,undefined
[7] Japan Science and Technology Agency,undefined
[8] Tohoku University Graduate School of Life Sciences,undefined
[9] CREST,undefined
[10] Japan Science and Technology Agency,undefined
[11] Graduate School of Bioagricultural Sciences,undefined
[12] Nagoya University,undefined
[13] Atmosphere and Ocean Research Institute,undefined
[14] The University of Tokyo,undefined
[15] RIKEN SPring-8 Center,undefined
[16] †Present address: Department of Molecular and Cellular Physiology,undefined
[17] Stanford University School of Medicine,undefined
[18] Stanford,undefined
[19] California 94305,undefined
[20] USA.,undefined
来源
Nature | 2015年 / 521卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Krokinobacter eikastus rhodopsin 2 (KR2) is the first light-driven Na+ pump discovered, and is viewed as a potential next-generation optogenetics tool. Since the positively charged Schiff base proton, located within the ion-conducting pathway of all light-driven ion pumps, was thought to prohibit the transport of a non-proton cation, the discovery of KR2 raised the question of how it achieves Na+ transport. Here we present crystal structures of KR2 under neutral and acidic conditions, which represent the resting and M-like intermediate states, respectively. Structural and spectroscopic analyses revealed the gating mechanism, whereby the flipping of Asp116 sequesters the Schiff base proton from the conducting pathway to facilitate Na+ transport. Together with the structure-based engineering of the first light-driven K+ pumps, electrophysiological assays in mammalian neurons and behavioural assays in a nematode, our studies reveal the molecular basis for light-driven non-proton cation pumps and thus provide a framework that may advance the development of next-generation optogenetics.
引用
收藏
页码:48 / 53
页数:5
相关论文
共 50 条
  • [21] NA+ MOVEMENT IN A SINGLE TURNOVER OF THE NA PUMP
    FORBUSH, B
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1984, 81 (17): : 5310 - 5314
  • [22] Intracellular [Na+] and Na+ pump rate in rat and rabbit ventricular myocytes
    Despa, S
    Islam, MA
    Pogwizd, SM
    Bers, DM
    JOURNAL OF PHYSIOLOGY-LONDON, 2002, 539 (01): : 133 - 143
  • [23] Na+ transport in plants
    Apse, Maris P.
    Blumwald, Eduardo
    FEBS LETTERS, 2007, 581 (12) : 2247 - 2254
  • [24] AFFINITY CHANGES FOR NA+ AND K+ AND 3-DIMENSIONAL STRUCTURAL-CHANGES IN THE NA+ PUMP
    TANIGUCHI, K
    SUZUKI, K
    SASAKI, T
    SHIMOKOBE, H
    IIDA, S
    JAPANESE JOURNAL OF PHARMACOLOGY, 1987, 43 : P93 - P93
  • [25] Transport energetics of the Na+ pump in Aplysia californica gut
    Gerencser, GA
    Loo, SY
    CANADIAN JOURNAL OF PHYSIOLOGY AND PHARMACOLOGY, 2001, 79 (09) : 822 - 824
  • [26] In Vitro Demonstration of Dual Light-Driven Na+/H+ Pumping by a Microbial Rhodopsin
    Li, Hai
    Sineshchekov, Oleg A.
    da Silva, Giordano F. Z.
    Spudich, John L.
    BIOPHYSICAL JOURNAL, 2015, 109 (07) : 1446 - 1453
  • [27] A PROPOSED MODEL FOR NA+ PUMP
    STONE, AJ
    BIOCHIMICA ET BIOPHYSICA ACTA, 1968, 150 (04) : 578 - &
  • [28] ANALYSIS OF NA+ PUMP GENES
    RUIZOPAZO, N
    HERRERA, VLM
    HYPERTENSION, 1992, 19 (05) : 495 - 495
  • [29] MOLECULAR BASIS FOR ACTIVE TRANSPORT OF NA+ AND K+
    SKOU, JC
    ACTA PHYSIOLOGICA SCANDINAVICA, 1969, S : 45 - &
  • [30] A crosstalk between Na+ channels, Na+/K+ pump and mitochondrial Na+ transporters controls glucose-dependent cytosolic and mitochondrial Na+ signals
    Nita, Iulia I.
    Hershfinkel, Michal
    Lewis, Eli C.
    Sekler, Israel
    CELL CALCIUM, 2015, 57 (02) : 69 - 75