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Biomedical subjects

D Noble

Publications and source records attributed to D Noble.

At least 163 records · Page 9Linked to original sources

The dependence of plateau currents in cardiac Purkinje fibres on the interval between action potentials.

1. The influence of diastolic interval on ionic currents that may determine the action potential duration in cardiac Purkinje fibres was investigated. As the diastolic interval is shortened from about 5 sec, the first effect on the action potential is to reduce and then abolish the notch at the beginning of the plateau.2. This effect corresponds to the influence of diastolic interval on the magnitude of a transient outward chloride current known as the ;dynamic current'.3. Further shortening of the diastolic interval produces a slight shortening of the action potential until intervals less than about 500 msec are used. The action potential then becomes considerably shorter. The ;time constant' of decay of this major influence of one action potential on the duration of the subsequent action potential is about 200 msec.4. This effect corresponds to the time course of decay of an outward (mainly K) current known as i(x1).5. It is shown that variations in the magnitude of i(x1) may be responsible for the alternation in action potential duration at the beginning of a train of stimuli known as ;electrical alternans'.6. The results in general are consistent with the view that i(x1) is the main current involved in determining the interval-duration relation although they cannot exclude the possibility that an inward current with a reavailability time course similar to the decay time course of i(x1) might also be involved.

Action Potentials↗

Separation of the pace-maker and plateau components of delayed rectification in cardiac Purkinje fibres.

1. Experiments on sheep Purkinje fibres were designed to determine whether the current mechanisms responsible for delayed rectification at the pace-maker (negative to -50 mV) and plateau (positive to -50 mV) ranges of potential are kinetically separable and independent.2. Hyperpolarizations from the plateau range were shown to produce decay of a single component of outward current within the plateau range, but two components were evident when the hyperpolarizations entered the pace-maker range.3. The time courses of recovery of the two components were too similar at -25 mV to allow temporal resolution at this potential. Clear temporal resolution was, however, possible at potentials between -55 and -95 mV. An indirect method of resolving the two components at -25 mV was used.4. The kinetic properties of the two components correspond to those previously described for the pace-maker potassium current, i(K) (2), and the outward plateau current, i(x) (1) (Noble & Tsien, 1968, 1969a).5. The instantaneous (fully activated) current-voltage relation for i(K) (2) was reconstructed from the analysed current records. It was found that this relation shows a negative slope conductance at all potentials positive to -75 mV and that the current tends towards zero at zero membrane potential.6. The results are compared with those predicted by two reaction models of the i(K) (2) and i(x) (1) mechanisms. It is concluded that i(K) (2) and i(x) (1) are kinetically separable but that it is not possible with present techniques to decide whether they are controlled by the same or completely independent membrane structures. It is also shown that the instantaneous current-voltage relation calculated for i(K) (2) does not depend on whether the controlling mechanisms are assumed to be independent or linked.

Animals↗

The relation of Rushton's 'liminal length' for excitation to the resting and active conductances of excitable cells.

1. The minimum (or liminal) length of an excitable cable that must lie above the inward current threshold in order to initiate propagation is derived using a simple polynomial representation of the ionic current-voltage relation.2. This model is then used to obtain an approximate equation for the liminal length that may easily be applied to excitable cells using experimental measurements of the ionic current.3. The equations are used to show that the liminal length in cardiac Purkinje fibres is expected to be much smaller than in squid nerve. The values calculated are similar to those obtained by Fozzard & Schoenberg (1972) from strength-duration curves.4. It is shown that the strength-duration curve for non-uniform excitation is virtually independent of the resting membrane resistance. The strength-duration time constant may not, therefore, be related to the membrane time constant.

Action Potentials↗

Outward membrane currents activated in the plateau range of potentials in cardiac Purkinje fibres.

1. The membrane currents in Purkinje fibres under voltage clamp conditions have been investigated in the range of potentials at which the action potential plateau occurs. The results show that in this range slow outward current changes occur which are quite distinct from the potassium current activated in the pace-maker range of potentials.2. The time course of current change in response to step voltage changes is non-exponential. At each potential the current changes may be analysed in terms of the sum of two exponential changes and this property has been used to dissect the currents into two components, i(x1) and i(x2), both of which have been found to obey kinetics of the Hodgkin-Huxley type.3. The first component, i(x1), is activated with a time constant of about 0.5 sec at the plateau. At more positive and more negative potentials the time constants are shorter. The steady-state degree of activation varies from 0 at about -50 mV to about 1 at +20 mV. The instantaneous current-voltage relation is an inward-going rectifier but shows no detectable negative slope. In normal Tyrode solution ([K](0) = 4 mM) the reversal potential is about -85 mV.4. The second component, i(x2), is activated extremely slowly and the time constant at the plateau is about 4 sec. The steady-state activation curve varies from 0 at about -40 mV to 1 at about +20 mV. The instantaneous current-voltage relation is nearly linear. The reversal potential occurs between -50 and -20 mV in different preparations.5. It is suggested that these currents are carried largely by K ions, but that some other ions (e.g. Na) also contribute so that the reversal potentials are positive to E(K).6. The relation of these results to previous work on delayed rectification in cardiac muscle is discussed.

Action Potentials↗

Reconstruction of the repolarization process in cardiac Purkinje fibres based on voltage clamp measurements of membrane current.

1. The results of the voltage clamp experiments described in a preceding paper (Noble & Tsien, 1969) have been used to reconstruct the repolarization process in Purkinje fibres.2. The results show that, at the beginning of the plateau, the instantaneous current-voltage relation has a region of net inward current which, in the absence of additional outward current, would prevent repolarization.3. The activation of the outward current, i(x1), overcomes this region of inward current within about 300 msec. This first phase of the plateau is limited mainly by the speed of activation of i(x1) and, during this time, there exists a threshold for all-or-nothing repolarization. The calculated time course of this threshold corresponds well with that recorded experimentally in uniformly polarized preparations.4. Once the net inward current has been abolished, the rate of repolarization is mainly limited by the membrane capacity, although i(x1) continues to activate until about 500 msec. The outward current, i(x1), begins to deactivate during the rapid terminal phase of repolarization, but it is not fully deactivated at the end of the action potential. A second action potential initiated at this time would therefore be shorter than the first.5. The effect of the initial outward current transient, recently identified as largely chloride current (Dudel Peper, Rüdel & Trautwein, 1967 a), has been calculated. The result is a notch at the beginning of the plateau similar to that often recorded experimentally. The action potential duration is not greatly influenced by this current component.6. The role of outward currents other than i(x1) in repolarization is discussed. It is concluded that the outward current component primarily responsible for terminating the action potential may vary and depends on the action potential duration. In Purkinje fibres with action potentials of normal duration, i(x1) is the main time-dependent outward current involved.

Action Potentials↗

The mechanism of oscillatory activity at low membrane potentials in cardiac Purkinje fibres.

1. The mechanism of oscillations at low membrane potentials in Purkinje fibres has been investigated using voltage clamp experiments.2. The oscillations are generated by time-dependent variations in an outward current component, i(x1), that is activated over the voltage range -40 to 10 mV. During normal activity, this current is responsible for initiating full repolarization to the resting potential (Noble & Tsien, 1969b) so that the oscillations represent a failure of the normal repolarization process, probably as a consequence of a small change in background (leakage) current.3. These oscillations are distinct from the normal pacemaker activity of Purkinje fibres which is generated by a separate time-dependent current, i(K2) (Noble & Tsien, 1968). i(K2) shows no time-dependence when the membrane potential variations are entirely positive to -65 mV and cannot, therefore, be involved in the oscillatory activity apart from contributing a background outward current.4. The amplitude and frequency of the oscillations are very sensitive to applied currents less than 1 muA/cm(2). Larger currents abolish the oscillatory activity.5. The mechanism of the oscillations is discussed in relation to the possible mechanisms underlying the natural pacemaker activity of the sino-atrial (SA) node.

Electric Stimulation↗

Adrenaline: mechanism of action on the pacemaker potential in cardiac Purkinje fibers.

The pacemaker potential in Purkinje fibers is generated by a slow fall in potassium current which allows the inward background currents to depolarize the membrane. Adrenaline shifts the relation between activation of the potassium current and membrane potential in a depolarizing direction. Consequently, during the pacemaker potential, the potassium current falls more rapidly to lower values and the inward currents then depolarize the membrane more quickly. The shift in the potassium activation curve produced by adrenaline is large compared to that produced by calcium ions. The molecular action of adrenaline may involve either a large change in the surface charge of the membrane or a change in the dependence of the potassium permeability on the local electric field.

Animals↗

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

1. 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.

Action Potentials↗

The effect of subthreshold potentials on the membrane current in cardiac Purkinje fibres.

1. In sodium-containing solutions, up to 60% of the slow outward current in Purkinje fibres can be activated by depolarizations which are too small to activate the fast sodium conductance responsible for the depolarization phase of the action potential. This result reinforces the view that the slow outward current results from slow activation of the potassium conductance rather than from slow inactivation of the sodium conductance.2. These subthreshold changes in membrane conductance are probably responsible for the dependence of the action potential and pace-maker potential durations on small changes in membrane potential in the subthreshold region.

Action Potentials↗