Determining the molecular basis of voltage sensitivity in membrane proteins

被引:12
作者
Kasimova, Marina A. [1 ]
Lindahl, Erik [1 ,2 ]
Delemotte, Lucie [1 ]
机构
[1] KTH Royal Inst Technol, Dept Appl Phys, Sci Life Lab, Stockholm, Sweden
[2] Stockholm Univ, Dept Biochem & Biophys, Sci Life Lab, Stockholm, Sweden
基金
瑞典研究理事会;
关键词
PERMEABILITY TRANSITION PORE; AMINO-ACID TRANSPORTER; RENAL PROXIMAL TUBULE; GATED ION-CHANNEL; DYNAMICS SIMULATIONS; CRYSTAL-STRUCTURE; GATING CHARGE; POTASSIUM CHANNEL; CHLORIDE CHANNEL; SODIUM-CHANNEL;
D O I
10.1085/jgp.201812086
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Voltage-sensitive membrane proteins are united by their ability to transform changes in membrane potential into mechanical work. They are responsible for a spectrum of physiological processes in living organisms, including electrical signaling and cell-cycle progression. Although the mechanism of voltage-sensing has been well characterized for some membrane proteins, including voltage-gated ion channels, even the location of the voltage-sensing elements remains unknown for others. Moreover, the detection of these elements by using experimental techniques is challenging because of the diversity of membrane proteins. Here, we provide a computational approach to predict voltage-sensing elements in any membrane protein, independent of its structure or function. It relies on an estimation of the propensity of a protein to respond to changes in membrane potential. We first show that this property correlates well with voltage sensitivity by applying our approach to a set of voltage-sensitive and voltage-insensitive membrane proteins. We further show that it correctly identifies authentic voltage-sensitive residues in the voltage-sensor domain of voltage-gated ion channels. Finally, we investigate six membrane proteins for which the voltage-sensing elements have not yet been characterized and identify residues and ions that might be involved in the response to voltage. The suggested approach is fast and simple and enables a characterization of voltage sensitivity that goes beyond mere identification of charges. We anticipate that its application before mutagenesis experiments will significantly reduce the number of potential voltage-sensitive elements to be tested.
引用
收藏
页码:1444 / 1458
页数:15
相关论文
共 121 条
[41]   Voltage-Regulated Water Flux through Aquaporin Channels In Silico [J].
Hub, Jochen S. ;
Aponte-Santamaria, Camilo ;
Grubmueller, Helmut ;
de Groot, Bert L. .
BIOPHYSICAL JOURNAL, 2010, 99 (12) :L97-L99
[42]   Replacing voltage sensor arginines with citrulline provides mechanistic insight into charge versus shape [J].
Infield, Daniel T. ;
Lee, Elizabeth E. L. ;
Galpin, Jason D. ;
Galles, Grace D. ;
Bezanilla, Francisco ;
Ahern, Christopher A. .
JOURNAL OF GENERAL PHYSIOLOGY, 2018, 150 (07) :1017-1024
[43]   Mechanism of Voltage Gating in Potassium Channels [J].
Jensen, Morten O. ;
Jogini, Vishwanath ;
Borhani, David W. ;
Leffler, Abba E. ;
Dror, Ron O. ;
Shaw, David E. .
SCIENCE, 2012, 336 (6078) :229-233
[44]  
JENTSCH TJ, 1995, J PHYSIOL-LONDON, V482P, pS19
[45]   Software news and updates - CHARNIM-GUI: A web-based grraphical user interface for CHARMM [J].
Jo, Sunhwan ;
Kim, Taehoon ;
Iyer, Vidyashankara G. ;
Im, Wonpil .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2008, 29 (11) :1859-1865
[46]   COMPARISON OF SIMPLE POTENTIAL FUNCTIONS FOR SIMULATING LIQUID WATER [J].
JORGENSEN, WL ;
CHANDRASEKHAR, J ;
MADURA, JD ;
IMPEY, RW ;
KLEIN, ML .
JOURNAL OF CHEMICAL PHYSICS, 1983, 79 (02) :926-935
[47]   APICAL VOLTAGE-DRIVEN URATE EFFLUX TRANSPORTER NPT4 IN RENAL PROXIMAL TUBULE [J].
Jutabha, P. ;
Anzai, N. ;
Wempe, M. F. ;
Wakui, S. ;
Endou, H. ;
Sakurai, H. .
NUCLEOSIDES NUCLEOTIDES & NUCLEIC ACIDS, 2011, 30 (12) :1302-1311
[48]   Identification of a novel voltage-driven organic anion transporter present at apical membrane of renal proximal tubule [J].
Jutabha, P ;
Kanai, Y ;
Hosoyamada, M ;
Chairoungdua, A ;
Kim, DK ;
Iribe, Y ;
Babu, E ;
Kim, JY ;
Anzai, N ;
Chatsudthipong, V ;
Endou, H .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (30) :27930-27938
[49]   Voltage-generated torque drives the motor of the ATP synthase [J].
Kaim, G ;
Dimroth, P .
EMBO JOURNAL, 1998, 17 (20) :5887-5895
[50]   ATP synthesis by F-type ATP synthase is obligatorily dependent on the transmembrane voltage [J].
Kaim, G ;
Dimroth, P .
EMBO JOURNAL, 1999, 18 (15) :4118-4127