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Blockade of rabbit atrial sodium channels by lidocaine. Characterization of continuous and frequency-dependent
F R Gilliam1, C F Starmer, A O Grant
1Department of Medicine, Duke University Medical Center, Durham, North Carolina 27710.
Abstract:
Lidocaine block of the cardiac sodium channel is believed to be primarily a function of channel state. For subthreshold potentials, block is limited to the inactivated state, whereas above threshold, block results from the combination of open- and inactivated-state block. Since, in the absence of drug, inactivation develops with time constants that vary from several hundred milliseconds to a few milliseconds as potential is varied from subthreshold to strongly depolarized levels, we would predict a similar voltage dependence of at least a fraction of block. Prior theoretical analyses from our laboratory suggest that there should be a direct parallel between blockade determined with a single pulse and trains of pulses. We tested these predictions by measuring the blockade of sodium current in cultured atrial myocytes during exposure to 80 microM lidocaine. We selected two test potentials for most of our studies, -80 mV, which was clearly in the subthreshold range of potentials, and -20 mV, which was close to the peak of the current-voltage curve. With single pulses of increasing duration, block developed with a single exponential time course and with time constants that decreased from 694 +/- 117 msec at -80 mV to 373 +/- 54 msec at -20 mV. In the absence of drug, inactivation developed with a time constant 176 +/- 17 at -80 mV and 2.9 +/- .5 msec at -20 mV. Despite the much slower onset of inactivation at -80 mV, no second-order delay in block development was observed. This suggests that at -80 mV block is occurring to a channel conformation that is accessed without delay rather than the classical inactivated state. We compared the kinetics of block during a single continuous pulse with trains of pulses at -20 mV. The rate of block onset was faster during the pulse trains, suggesting an element of "activated state" block. We computed shifts in apparent inactivation from observed steady-state blockade. The computed shifts agree well with those observed, indicating that shifts in apparent inactivation result largely from voltage-sensitive equilibrium blockade. The classical states described in the Hodgkin-Huxley formalism may be too restrictive to fully describe the voltage- and time-dependent block of cardiac sodium channels.
Insights
Lidocaine blocks cardiac sodium channels differently at subthreshold and above-threshold potentials. Blockade kinetics suggest channel states beyond classical inactivation influence lidocaine
Area of Science:
- Cardiovascular Pharmacology
- Ion Channel Physiology
- Computational Neuroscience
Background:
- Lidocaine's cardiac sodium channel block is state-dependent.
- Inactivation kinetics vary significantly with membrane potential.
Purpose of the Study:
- To investigate lidocaine block kinetics in cardiac sodium channels.
- To compare block development under different voltage and stimulation conditions.
Main Methods:
- Patch-clamp electrophysiology in cultured atrial myocytes.
- Application of 80 microM lidocaine.
- Single and train pulse stimulation at -80 mV and -20 mV.
Main Results:
- Block developed with single exponential time courses at both potentials.
- Block onset at -80 mV was faster than expected based on inactivation kinetics.
- Faster block onset during pulse trains at -20 mV suggested activated-state block.
- Observed shifts in apparent inactivation correlated with computed shifts from blockade.
Conclusions:
- Cardiac sodium channel block by lidocaine involves states beyond classical inactivation.
- The Hodgkin-Huxley formalism may be insufficient to describe voltage- and time-dependent block.