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Biophysical Journal 74: 210-229 (1998)
© 1998 the Biophysical Society
Biophys J, January 1998, p. 210-229, Vol. 74, No. 1
*Department of Pharmacological and Physiological Sciences and the #Department of Medicine, The University of Chicago, Chicago, Illinois 60637
We describe a new electrophysiological technique called
nonequilibrium response spectroscopy, which involves
application of rapidly fluctuating (as high as 14 kHz) large-amplitude
voltage clamp waveforms to ion channels. As a consequence of the
irreversible (in the sense of Carnot) exchange of energy between the
fluctuating field and the channel protein, the gating response is
exquisitely sensitive to features of the kinetics that are difficult or
impossible to adequately resolve by means of traditional stepped
potential protocols. Here we focus on the application of dichotomous
(telegraph) noise voltage fluctuations, a broadband Markovian colored
noise that fluctuates between two values. Because Markov kinetic models of channel gating can be embedded within higher-dimensional Markov models that take into account the effects of the voltage fluctuations, many features of the response of the channels can be calculated algebraically. This makes dichotomous noise and its generalizations uniquely suitable for model selection and kinetic analysis. Although we
describe its application to macroscopic ionic current measurements, the
nonequilibrium response method can also be applied to gating and single
channel current recording techniques. We show how data from the human
cardiac isoform (hH1a) of the Na+ channel expressed in
mammalian cells can be acquired and analyzed, and how these data reveal
hidden aspects of the molecular kinetics that are not revealed by
conventional methods.
Biophys J, January 1998, p. 210-229, Vol. 74, No. 1
© 1998 by the Biophysical Society 0006-3495/98/01/210/20 $2.00
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