Literature DB >> 7391810

Junctional resistance and action potential delay between embryonic heart cell aggregates.

D E Clapham, A Shrier, R L DeHaan.   

Abstract

Spheroidal aggregates of embryonic chick ventricle cells were brought into contact and allowed to synchronize their spontaneous beats. Action potentials were recorded with both intracellular and extracellular electrodes. The degree of electrical interaction between the newly apposed aggregates was assessed by measuring the delay or latency (L) between the entrained action potentials, and by determining directly interaggregate coupling resistance (Rc) with injected current pulses. Aggregate size, contact area between the aggregates, and extracellular potassium concentration (Ko+) were important variables regulating the time-course of coupling. When these variables were controlled, L and Rc were found to be linearly related after beat synchrony was achieved. In 4.8 mM Ko+ L/Rc = 3.7 ms/M omega; in 1.3 mM Ko+ L/Rc = 10.1 ms/M omega. We conclude that action potential delay between heart cell aggregates can be related quantitatively to Rc.

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Year:  1980        PMID: 7391810      PMCID: PMC2215265          DOI: 10.1085/jgp.75.6.633

Source DB:  PubMed          Journal:  J Gen Physiol        ISSN: 0022-1295            Impact factor:   4.086


  32 in total

Review 1.  Cell coupling in developing systems: the heart-cell paradigm.

Authors:  R L DeHaan; H G Sachs
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2.  Ultrastructure of the human atrioventricular node.

Authors:  T N James; L Sherf
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3.  The potassium-sensitivity of isolated embryonic heart cells increases with development.

Authors:  R L DeHaan
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4.  Synchronized beating of myocardial cells mediated by FL cells in monolayer culture and its inhibition by trypsin-treated FL cells.

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5.  Anatomical and ultrastructural study of the electrophysiological atrioventricular node of the rabbit.

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6.  Permeability of membrane junctions.

Authors:  W R Loewenstein
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7.  The frequency dependent character of the membrane capacity in cardiac Purkynĕ fibres.

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8.  Synchronizatin of pulsation rates in isolated cardiac myocytes.

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9.  The diffusion of radiopotassium across intercalated disks of mammalian cardiac muscle.

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10.  Quantitative analysis of low-resistance junctions between cultured cells and correlation with gap-junctional areas.

Authors:  J D Sheridan; M Hammer-Wilson; D Preus; R G Johnson
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  13 in total

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2.  Endothelin-induced conversion of embryonic heart muscle cells into impulse-conducting Purkinje fibers.

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Review 4.  Cell-to-cell coupling assayed by means of electrical measurements.

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5.  The development of beat-rate synchronization of rat myocyte pairs in cell culture.

Authors:  H J Jongsma; M Masson-Pévet; L Tsjernina
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6.  Propagation through electrically coupled cells. How a small SA node drives a large atrium.

Authors:  R W Joyner; F J van Capelle
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8.  Small signal impedance of heart cell membranes.

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9.  Pacemaker synchronization of electrically coupled rabbit sinoatrial node cells.

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10.  Electrical coupling among heart cells in the absence of ultrastructurally defined gap junctions.

Authors:  E H Williams; R L DeHaan
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