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© The Rockefeller University Press, 0022-1295/1999//305/ $5.00
Journal of General Physiology, Volume 114, Number 2, 1999


Original Article

Allosteric Voltage Gating of Potassium Channels II

Mslo Channel Gating Charge Movement in the Absence of Ca2+



Frank T. Horrigana and Richard W. Aldricha

a From the Department of Molecular and Cellular Physiology, Howard Hughes Medical Institute, Stanford University School of Medicine, Stanford, California 94305
Department of Molecular and Cellular Physiology, Howard Hughes Medical Institute, Stanford University School of Medicine, Stanford, CA 94305.Fax: 650-725-4463;

raldrich{at}leland.stanford.edu

Large-conductance Ca2+-activated K+ channels can be activated by membrane voltage in the absence of Ca2+ binding, indicating that these channels contain an intrinsic voltage sensor. The properties of this voltage sensor and its relationship to channel activation were examined by studying gating charge movement from mSlo Ca2+-activated K+ channels in the virtual absence of Ca2+ (<1 nM). Charge movement was measured in response to voltage steps or sinusoidal voltage commands. The charge–voltage relationship (Q–V) is shallower and shifted to more negative voltages than the voltage-dependent open probability (G–V). Both ON and OFF gating currents evoked by brief (0.5-ms) voltage pulses appear to decay rapidly ({tau}ON = 60 µs at +200 mV, {tau}OFF = 16 µs at –80 mV). However, QOFF increases slowly with pulse duration, indicating that a large fraction of ON charge develops with a time course comparable to that of IK activation. The slow onset of this gating charge prevents its detection as a component of IgON, although it represents ~40% of the total charge moved at +140 mV. The decay of IgOFF is slowed after depolarizations that open mSlo channels. Yet, the majority of open channel charge relaxation is too rapid to be limited by channel closing. These results can be understood in terms of the allosteric voltage-gating scheme developed in the preceding paper (Horrigan, F.T., J. Cui, and R.W. Aldrich. 1999. J. Gen. Physiol. 114:277–304). The model contains five open (O) and five closed (C) states arranged in parallel, and the kinetic and steady-state properties of mSlo gating currents exhibit multiple components associated with C–C, O–O, and C–O transitions.

Key Words: calcium • potassium channel • BK channel • ion channel gating • gating current


© 1999 The Rockefeller University Press


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F. T. Horrigan, J. Cui, and R. W. Aldrich
Allosteric Voltage Gating of Potassium Channels I: Mslo Ionic Currents in the Absence of Ca2+
J. Gen. Physiol., August 1, 1999; 114(2): 277 - 304.
[Abstract] [Full Text] [PDF]


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S. W. Jones
Commentary: A Plausible Model
J. Gen. Physiol., August 1, 1999; 114(2): 271 - 275.
[Full Text] [PDF]



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