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Effects of high-rate electrical stimulation upon firing in modelled and real neurons.

机译:高速电刺激对模拟和真实神经元放电的影响。

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摘要

Many medical devices use high-rate, low-amplitude currents to affect neural function. This study examined the effect of stimulation rate upon action potential threshold and sustained firing rate for two model neurons, the rabbit myelinated fibre and the unmyelinated leech touch sensory cell. These model neurons were constructed with the NEURON simulator from electrophysiological data. Alternating-phase current pulses (0-1250 Hz), of fixed phase duration (0.2 ms), were used to stimulate the neurons, and propagation success or failure was measured. One effect of the high pulse rates was to cause a net depolarisation, and this was verified by the relief of action potential conduction block by 500 Hz extracellular stimulation in leech neurons. The models also predicted that the neurons would maintain maximum sustained firing at a number of different stimulation rates. For example, at twice threshold, the myelinated model followed the stimulus up to 500 Hz stimulation, half the stimulus rate up to 850 Hz stimulation, and it did not fire at 1250 Hz stimulation. By contrast, the unmyelinated neuron model had a lower maximum firing rate of 190 Hz, and this rate was obtained at a number of stimulation rates, up to 1250 Hz. The myelinated model also predicted sustained firing with 1240 Hz stimulation at threshold current, but no firing when the current level was doubled. Most of these effects are explained by the interaction of stimulus pulses with the cell's refractory period.
机译:许多医疗设备使用高速率,低振幅电流来影响神经功能。这项研究检验了刺激率对两种模型神经元(兔有髓纤维和无髓le触觉感觉细胞)的动作电位阈值和持续放电率的影响。这些模型神经元由NEURON模拟器根据电生理数据构建而成。使用固定相位持续时间(0.2 ms)的交流电流脉冲(0-1250 Hz)刺激神经元,并测量传播的成功与否。高脉冲频率的一种作用是引起净去极化,水by神经元中500 Hz的细胞外刺激可缓解动作电位传导阻滞,从而证明了这一点。该模型还预测,在许多不同的刺激速率下,神经元将维持最大的持续放电。例如,在两次阈值时,髓鞘模型在最高500 Hz刺激下遵循刺激,在最高850 Hz刺激下遵循一半刺激速率,而在1250 Hz刺激下未激发。相比之下,未脱髓鞘的神经元模型具有较低的最大激发速率190 Hz,并且该速率是在高达1250 Hz的多种刺激速率下获得的。髓鞘模型还预测在阈值电流下会以1240 Hz的刺激持续放电,但当电流水平加倍时则没有放电。这些影响中的大多数可以通过刺激脉冲与细胞不应期的相互作用来解释。

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