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首页> 外文期刊>The Journal of general physiology >Pacemaker Synchronization of Electrically Coupled Rabbit Sinoatrial Node Cells
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Pacemaker Synchronization of Electrically Coupled Rabbit Sinoatrial Node Cells

机译:电耦合兔窦房结细胞的起搏器同步

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The effects of intercellular coupling conductance on the activity of two electrically coupled isolated rabbit sinoatrial nodal cells were investigated. A computer-controlled version of the “coupling clamp” technique was used in which isolated sinoatrial nodal cells, not physically in contact with each other, were electrically coupled at various values of ohmic coupling conductance, mimicking the effects of mutual interaction by electrical coupling through gap junctional channels. We demonstrate the existence of four types of electrical behavior of coupled spontaneously active cells. As the coupling conductance is progressively increased, the cells exhibit: ( a ) independent pacemaking at low coupling conductances, ( b ) complex dynamics of activity with mutual interactions, ( c ) entrainment of action potential frequency at a 1:1 ratio with different action potential waveforms, and ( d ) entrainment of action potentials at the same frequency of activation and virtually identical action potential waveforms. The critical value of coupling conductance required for 1:1 frequency entrainment was 0.5 nS in each of the five cell pairs studied. The common interbeat interval at a relatively high coupling conductance (10 nS), which is sufficient to produce entrainment of frequency and also identical action potential waveforms, is determined most by the intrinsically faster pacemaker cell and it can be predicted from the diastolic depolarization times of both cells. Evidence is provided that, at low coupling conductances, mutual pacemaker synchronization results mainly from the phase-resetting effects of the action potential of one cell on the depolarization phase of the other. At high coupling conductances, the tonic, diastolic interactions become more important.
机译:研究了细胞间偶联电导对两个电偶联分离的兔窦房结细胞活性的影响。使用“耦合钳”技术的计算机控制版本,其中未物理接触的孤立窦房结细胞以各种欧姆耦合电导率电耦合,从而模仿了通过电耦合通过间隙连接通道。我们展示了耦合的自发活动细胞的四种类型的电行为的存在。随着偶联电导的逐渐增加,细胞表现出:(a)在低偶联电导下的独立起搏;(b)具有相互相互作用的复杂的活动动力学;(c)带有不同作用的1:1动作电位频率的夹带电位波形,以及(d)在相同的激活频率和几乎相同的动作电位波形下夹带动作电位。在所研究的五个电池对中的每一个中,1:1频率夹带所需的耦合电导的临界值均<0.5 nS。相对较高的耦合电导(10 nS)时的常见心跳间隔足以产生频率的夹带,并且还具有相同的动作电位波形,这在本质上是由较快的起搏器电池决定的,并且可以从舒张期的去极化时间预测两个单元格。有证据表明,在低耦合电导率下,相互的起搏器同步主要是由于一个细胞的动作电位对另一个细胞的去极化相的相位复位作用所致。在高耦合电导率下,张力,舒张期相互作用变得更为重要。

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