FLEXOELECTRIC EFFECTS IN MODEL AND NATIVE MEMBRANES CONTAINING ION CHANNELS

被引:0
|
作者
PETROV, AG
MILLER, BA
HRISTOVA, K
USHERWOOD, PNR
机构
[1] UNIV NOTTINGHAM,DEPT LIFE SCI,UNIV PK,NOTTINGHAM NG7 2RD,ENGLAND
[2] BULGARIAN ACAD SCI,INST SOLID STATE PHYS,DEPT BIOMOLEC LAYERS,BU-1784 SOFIA,BULGARIA
关键词
LIPID BILAYER MEMBRANES; LOCUST MUSCLE MEMBRANES; PATCH CLAMP; MECHANOELECTRIC TRANSDUCTION; FLEXOELECTRICITY; ION CHANNELS;
D O I
暂无
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
An experimental study of flexoelectricity in model membranes containing ion pores and native membranes containing ion channels has been undertaken with the objective of determining the relationship, if any, between flexoelectricity and ion transport. Model membrane patches containing ion pores induced by a blue-green algal toxin, microcystin-LR, and locust muscle membrane patches containing potassium channels were studied using patch-clamp techniques. A correspondence was established between the presence of open channels and pores and the amplitude of the 1st harmonic of the total membrane current when the membranes or patches were subjected to pressure oscillations. The 2nd harmonic of the membrane current provided a measure of the amplitude of a membrane curvature induced by pressure, thus making it possible to determine the membrane flexoelectric coefficient. This study shows that flexoelectricity could be an effective driving force for ion transport through membrane pores and channels, thus further highlighting the possible biological significance of this mechano-electric phenomenon.
引用
收藏
页码:289 / 300
页数:12
相关论文
共 50 条
  • [21] Membranes containing oriented supramolecular transport channels
    Beginn, U
    Zipp, G
    Mourran, A
    Walther, P
    Möller, M
    ADVANCED MATERIALS, 2000, 12 (07) : 513 - +
  • [22] An electrophysiological study of the effects of propofol on native neuronal ligand-gated ion channels
    Patten, D
    Foxon, GR
    Martin, KF
    Halliwell, RF
    CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 2001, 28 (5-6): : 451 - 458
  • [23] Ion Exchange Membranes: Constructing and Tuning Ion Transport Channels
    Zuo, Peipei
    Xu, Ziang
    Zhu, Qing
    Ran, Jin
    Ge, Liang
    Ge, Xiaolin
    Wu, Liang
    Yang, Zhengjin
    Xu, Tongwen
    ADVANCED FUNCTIONAL MATERIALS, 2022, 32 (52)
  • [24] PHYSICAL EFFECTS OF TETANUS TOXIN ON MODEL MEMBRANES CONTAINING GANGLIOSIDE
    CLOWES, AW
    CHERRY, RJ
    CHAPMAN, D
    JOURNAL OF MOLECULAR BIOLOGY, 1972, 67 (01) : 49 - &
  • [25] THE STRUCTURE OF ION CHANNELS IN MEMBRANES OF EXCITABLE CELLS
    UNWIN, N
    NEURON, 1989, 3 (06) : 665 - 676
  • [26] ION CHANNELS IN CARDIAC CELL-MEMBRANES
    REUTER, H
    ANNUAL REVIEW OF PHYSIOLOGY, 1984, 46 : 473 - 484
  • [27] Reconstitution of lysosomal ion channels into artificial membranes
    Venturi, Elisa
    Sitsapesan, Rebecca
    LYSOSOMES AND LYSOSOMAL DISEASES, 2015, 126 : 217 - 236
  • [28] Interaction of melittin with ion channels of excitable membranes
    Zherelova, O. M.
    Kabanova, N. V.
    Kazachenko, V. N.
    Chailakhyan, L. M.
    BIOFIZIKA, 2007, 52 (02): : 295 - 300
  • [29] Puroindolines form ion channels in biological membranes
    Charnet, P
    Molle, G
    Marion, D
    Rousset, M
    Lullien-Pellerin, V
    BIOPHYSICAL JOURNAL, 2003, 84 (04) : 2416 - 2426
  • [30] Collective dynamics of ion channels in biological membranes
    Koppenhofer, E
    GENERAL PHYSIOLOGY AND BIOPHYSICS, 1996, 15 (02) : 187 - 188