Deactivation retards recovery from inactivation in Shaker K+ channels

被引:0
|
作者
Kuo, CC [1 ]
机构
[1] NATL TAIWAN UNIV HOSP, TAIPEI 100, TAIWAN
来源
JOURNAL OF NEUROSCIENCE | 1997年 / 17卷 / 10期
关键词
two-electrode voltage clamp; Shaker K+ channel; deactivation; ball and chain model of inactivation; recovery from inactivation; K+ ion binding site;
D O I
暂无
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
In Na+ channels, recovery from inactivation begins with a delay, followed by an exponential course, and hyperpolarization shortens the delay as well as hastens the entire exponential phase. These findings have been taken to indicate that Na+ channels must deactivate to recover from inactivation, and deactivation facilitates the unbinding of the inactivating particle, in contrast, it is demonstrated in this study that recovery from inactivation in Shaker K+ channels begins with no delay on repolarization. Moreover, hyperpolarization hastens only the initial phase (fast component) of recovery yet retards the later phases of recovery by increasing the proportion of slow components. The time course of slow inward "tail" K+ currents, which presumably result from the open state(s) traversed by the recovering inactivated channel, always matches the fast, but not the slow, components of recovery, suggesting that the fast and the slow components primarily correspond to recovery via the open state (unblocking of the inactivating particle before channel deactivation) and via the closed state (deactivation before unblocking), respectively. Besides, changing external K+ concentration effectively alters the absolute value of the initial recovery speed, but not its voltage dependence. It seems that Shaker K+ channel deactivation hinders, rather than facilitates, the unbinding of the inactivating particle and therefore retards recovery from inactivation, whereas external K+ may enhance unbinding of the inactivating particle by binding to a site located near the external entrance of the pore.
引用
收藏
页码:3436 / 3444
页数:9
相关论文
共 50 条
  • [1] Locked-Open Activation Gate Prevents the Recovery of Shaker K+ Channels from Slow Inactivation
    Szanto, Tibor G.
    Zakany, Florina
    Papp, Ferenc
    Varga, Zoltan
    Panyi, Gyorgy
    BIOPHYSICAL JOURNAL, 2013, 104 (02) : 123A - 123A
  • [2] Recovery from slow inactivation of Shab K+ channels
    Arias-Olguin, Imilla I.
    Carrillo, Elisa
    Islas, Leon D.
    Gomez-Lagunas, Froylan
    CHANNELS, 2013, 7 (03) : 225 - 228
  • [3] The Effect of D2O on the Inactivation Kinetics and Recovery from Slow Inactivation of Shaker-IR K+ Channels
    Szanto, Tibor G.
    Szilagyi, Orsolya
    Panyi, Gyorgy
    BIOPHYSICAL JOURNAL, 2015, 108 (02) : 118A - 118A
  • [4] Fast inactivation of Shaker K+ channels is highly temperature dependent
    Nobile, M
    Olcese, R
    Toro, L
    Stefani, E
    EXPERIMENTAL BRAIN RESEARCH, 1997, 114 (01) : 138 - 142
  • [5] Fast inactivation of Shaker K+ channels is highly temperature dependent
    M. Nobile
    Riccardo Olcese
    Ligia Toro
    Enrico Stefani
    Experimental Brain Research, 1997, 114 : 138 - 142
  • [6] GATING CURRENTS IN SHAKER K+ CHANNELS - IMPLICATIONS FOR ACTIVATION AND INACTIVATION MODELS
    PEROZO, E
    PAPAZIAN, DM
    STEFANI, E
    BEZANILLA, F
    BIOPHYSICAL JOURNAL, 1992, 62 (01) : 160 - 171
  • [7] Mutations in the Cavity Affect the Rate of Slow Inactivation in Shaker K+ Channels
    Szanto, Tibor G.
    Szilagyi, Orsolya
    Zakany, Florina
    Panyi, Gyorgy
    BIOPHYSICAL JOURNAL, 2014, 106 (02) : 537A - 538A
  • [8] PERMEANT IONS INFLUENCE THE RATE OF SLOW INACTIVATION IN SHAKER K+ CHANNELS
    LABARCA, P
    MACKINNON, R
    FASEB JOURNAL, 1992, 6 (01): : A378 - A378
  • [9] Fast inactivation in Shaker K+ channels -: Properties of ionic and gating currents
    Roux, MJ
    Olcese, R
    Toro, L
    Bezanilla, F
    Stefani, E
    JOURNAL OF GENERAL PHYSIOLOGY, 1998, 111 (05): : 625 - 638
  • [10] Recovery from slow inactivation in K+ channels is controlled by water molecules
    Jared Ostmeyer
    Sudha Chakrapani
    Albert C. Pan
    Eduardo Perozo
    Benoît Roux
    Nature, 2013, 501 : 121 - 124