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March 1, 1968The Journal of Physiology490 citationsOpen Access

The kinetics and rectifier properties of the slow potassium current in cardiac Purkinje fibres

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DNDenis NobleRTRichard W. Tsien

Key Result

The slow potassium current in cardiac Purkinje fibres is carried by potassium ions, exhibits inward-going rectification, and plays an important role in generating pace-maker depolarization.

Key Points

  • This research investigates how the slow potassium current behaves in cardiac Purkinje fibres, focusing on its kinetics and rectification properties.
  • Analyzed the reversal potential of the slow outward current in Purkinje fibres with varying extracellular potassium concentrations.
  • Examined current-voltage relations and temperature sensitivity of the potassium current over a range of temperatures (26-38 degrees C).
  • Calculated changes in potassium current during pacemaker activity and compared these with historical models.
  • The slow outward current is primarily carried by potassium ions, consistent with expected potassium equilibrium potential.
  • Two factors determine the current's magnitude: first-order voltage-dependent kinetics with long time constants affected by temperature (Q(10) = 6.3), and inward-going rectification beyond +25 mV.
  • The negative slope in the current-voltage relation is crucial in generating final phase depolarization of pacemaker activity.

Structured PICO

P
Population
cardiac Purkinje fibres
I
Intervention
Measurement of slow outward current at varying external potassium concentrations ([K](o)) and temperatures (26-38 degrees C)
O
Outcome
Kinetics and rectifier properties of the slow potassium currentsurrogate

This foundational electrophysiology study characterizes the slow potassium current in cardiac Purkinje fibers, highlighting its voltage-dependent kinetics, inward rectification, and role in pacemaker depolarization.

Abstract

The reversal potential of the slow outward current in Purkinje fibres varies with K(o) in accordance with the expected potassium equilibrium potential. It is concluded that virtually all of this current is carried by potassium ions.2. The magnitude of the current is determined by two separable factors. The first factor is directly proportional to a variable obeying first-order voltage-dependent kinetics of the Hodgkin-Huxley type but with extremely long time constants. The time constants of this variable are extremely sensitive to temperature and the Q(10) over the range 26-38 degrees C is 6.3. The second factor shows inward-going rectification with a marked negative slope in the current-voltage relation beyond about 25 mV positive to the K equilibrium potential. The current-voltage relations measured at different values of K(o) cross each other on the outward current side of the equilibrium potential.4. The changes in slow potassium current during pace-maker activity have been calculated. It is shown that the mechanism of the pace-maker potential differs in several important respects from that described by Noble's (1962) model. The negative slope in the current-voltage relation appears to be an important factor in generating the last phase of pace-maker depolarization.5. The role of the slow potassium current during the action potential and the consequences of the high temperature dependence of the kinetics are discussed.

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Cite This Study

Noble et al. (1968) studied Cardiac electrophysiology. The slow potassium current in cardiac Purkinje fibres is carried by potassium ions, exhibits inward-going rectification, and plays an important role in generating pace-maker depolarization.

synapsesocial.com/papers/6a0a1d514b13cba79251956fhttps://doi.org/10.1113/jphysiol.1968.sp008454
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