Mechanisms for the Ca2+-dependent gating of single large-conductance Ca2+-activated K+ channels from cultured rat skeletal muscle were developed using two-dimensional analysis of single-channel currents recorded with the patch clamp technique. To extract and display the essential kinetic information, the kinetic structure, from the single channel currents, adjacent open and closed intervals were binned as pairs and plotted as two-dimensional dwell-time distributions, and the excesses and deficits of the interval pairs over that expected for independent pairing were plotted as dependency plots. The basic features of the kinetic structure were generally the same among single large-conductance Ca2+-activated K+ channels, but channel-specific differences were readily apparent, suggesting heterogeneities in the gating. Simple gating schemes drawn from the Monod- Wyman-Changeux (MWC) model for allosteric proteins could approximate the basic features of the Ca2+ dependence of the kinetic structure. However, consistent differences between the observed and predicted dependency plots suggested that additional brief lifetime closed states not included in MWC-type models were involved in the gating. Adding these additional brief closed states to the MWC-type models, either beyond the activation pathway (secondary closed states) or within the activation pathway (intermediate closed states), improved the description of the Ca2+ dependence of the kinetic structure. Secondary closed states are consistent with the closing of secondary gates or channel block. Intermediate closed states are consistent with mechanisms in which the channel activates by passing through a series of intermediate conformations between the more stable open and closed states. It is the added secondary or intermediate closed states that give rise to the majority of the brief closings (flickers) in the gating.
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1 June 1998
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June 01 1998
Kinetic Structure of Large-Conductance Ca2+-activated K+ Channels Suggests that the Gating Includes Transitions through Intermediate or Secondary States : A Mechanism for Flickers
Brad S. Rothberg,
Brad S. Rothberg
From the Department of Physiology and Biophysics, University of Miami School of Medicine, Miami, Florida 33101-6430
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Karl L. Magleby
Karl L. Magleby
From the Department of Physiology and Biophysics, University of Miami School of Medicine, Miami, Florida 33101-6430
Search for other works by this author on:
Brad S. Rothberg
From the Department of Physiology and Biophysics, University of Miami School of Medicine, Miami, Florida 33101-6430
Karl L. Magleby
From the Department of Physiology and Biophysics, University of Miami School of Medicine, Miami, Florida 33101-6430
Address correspondence to Dr. Karl L. Magleby or Dr. Brad S. Rothberg, Department of Physiology and Biophysics, University of Miami School of Medicine, P.O. Box 016430, R-430, Miami, FL 33101-6430. Fax: 305-243-6898; E-mail: [email protected]
Received:
February 20 1998
Accepted:
April 13 1998
Online ISSN: 1540-7748
Print ISSN: 0022-1295
1998
J Gen Physiol (1998) 111 (6): 751–780.
Article history
Received:
February 20 1998
Accepted:
April 13 1998
Citation
Brad S. Rothberg, Karl L. Magleby; Kinetic Structure of Large-Conductance Ca2+-activated K+ Channels Suggests that the Gating Includes Transitions through Intermediate or Secondary States : A Mechanism for Flickers . J Gen Physiol 1 June 1998; 111 (6): 751–780. doi: https://doi.org/10.1085/jgp.111.6.751
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