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November 1, 1998Journal of Cardiovascular Pharmacology24 citations

Cesium Effects on if and iK in Rabbit Sinoatrial Node Myocytes: Implications for SA Node Automaticity

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YLYuan‐Mou LiuHYHaibo YuCLC-Z. Li

Key Result

Cesium (2 mM) almost abolished the hyperpolarization-activated current i(f) but only slightly decreased the delayed-rectifier current i(K) in rabbit sinoatrial node myocytes.

Structured PICO

P
Population
Rabbit sinoatrial (SA) node myocytes
I
Intervention
Cesium (Cs+) 2 mM
C
Comparator
Absence of Cesium (baseline conditions)
O
Outcome
Effects on hyperpolarization-activated current (i_f) and delayed-rectifier current (i_K) in the pacemaker range of potentialssurrogate

The failure of Cesium to block SA-node spontaneous discharge is likely due to the resistance of i_K to Cesium block, highlighting the predominant role of i_K in SA node automaticity.

Abstract

Cesium blocks the hyperpolarization-activated current i(f) but blocks neither the delayed-rectifier current i(K) nor the sinoatrial (SA) node discharge. It has been proposed that the failure of Cs+ to block SA discharge is either an incomplete block or a negative shift of i(f). However, an alternative possibility is that i(K) (rather than i(f)) has a predominant role in the SA-pacemaker potential. To investigate this point, the effects of Cs+ on both i(f) and i(K) in the pacemaker range of potentials were studied in the same single SA node cell at the same time by means of the perforated patch-clamp technique. Hyperpolarizing steps from a holding potential (Vh) of -35 mV into and past the pacemaker-potential range resulted in a progressively larger i(f) associated with an increasing slope conductance. Cs+ (2 mM) reversibly blocked both i(f) and the slope conductance increase, suggesting that the current activated was indeed predominantly i(f). Subsequently, hyperpolarizing steps to -50, -60, and -70 mV were applied in the absence (to activate only i(f)) and in the presence of a prior depolarizing step to +10 mV (to activate i(K) as well, as the action potential normally does). Cs+ almost abolished i(f) but only slightly decreased i(K). It is concluded that the failure of Cs+ to block the SA- node spontaneous discharge is not due to a shift of i(f) out of the pacemaker range (due to run-down) or an incomplete block of i(f). Instead, the resistance of i(K) to block by Cs+ is consistent with a predominant role of i(K) for the discharge of the SA node, although i(f) can contribute under normal or special circumstances. The reduction of i(K) by Cs+ raises the question whether the Cs+ slows the SA-node discharge not only by suppressing I(f), but also by reducing i(K).

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Cite This Study

Liu et al. (1998) studied Sinoatrial node electrophysiology. Cesium (Cs+) vs. Absence of Cesium was evaluated on Effects on i(f) and i(K) currents. Cesium (2 mM) almost abolished the hyperpolarization-activated current i(f) but only slightly decreased the delayed-rectifier current i(K) in rabbit sinoatrial node myocytes.

synapsesocial.com/papers/6a903843bc81fe7dff4dce4bhttps://doi.org/10.1097/00005344-199811000-00015
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Pacemaking in rabbit isolated sino‐atrial node cells during Cs+ block of the hyperpolarization‐activated current if.1990 · 145 citations
  2. 2Cesium blockade of delayed outward currents and electrically induced pacemaker activity in mammalian ventricular myocardium.1981 · 24 citations
  3. 3The ionic currents underlying pacemaker activity in rabbit sino-atrial node: experimental results and computer simulations1984 · 82 citations
  4. 4Block and activation of the pace‐maker channel in calf Purkinje fibres: effects of potassium, caesium and rubidium1982 · 182 citations
  5. 5Role of <i>I</i><sub>K</sub> and <i>I</i><sub>f</sub> in the pacemaker mechanisms of sino-atrial node myocytes2001 · 13 citations