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Sodium entry efficiency during action potentials: A novel single-parameter family of Hodgkin-Huxley models

机译:动作电位下的钠进入效率:霍奇金-赫克斯利模型的新型单参数族

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Sodium entry during an action potential determines the energy efficiency of a neuron. The classic Hodgkin-Huxley model of action potential generation is notoriously inefficient in that regard with about 4 times more charges flowing through the membrane than the theoretical minimum required to achieve the observed depolarization. Yet, recent experimental results show that mammalian neurons are close to the optimal metabolic efficiency and that the dynamics of their voltage-gated channels is significantly different than the one exhibited by the classic Hodgkin-Huxley model during the action potential. Nevertheless, the original Hodgkin-Huxley model is still widely used and rarely to model the squid giant axon from which it was extracted. Here, we introduce a novel family of Hodgkin-Huxley models that correctly account for sodium entry, action potential width and whose voltage-gated channels display a dynamics very similar to the most recent experimental observations in mammalian neurons. We speak here about a family of models because the model is parameterized by a unique parameter the variations of which allow to reproduce the entire range of experimental observations from cortical pyramidal neurons to Purkinje cells, yielding a very economical framework to model a wide range of different central neurons. The present paper demonstrates the performances and discuss the properties of this new family of models.
机译:动作电位期间钠的进入决定了神经元的能量效率。众所周知,经典的霍奇金-赫克斯利(Hodgkin-Huxley)动作电位产生模型效率不高,因为流过膜的电荷大约比实现观察到的去极化所需的理论最小值多4倍。然而,最近的实验结果表明,哺乳动物神经元已接近最佳代谢效率,并且其电压门控通道的动力学与经典霍奇金-赫克斯利模型在动作电位期间表现出的动力学显着不同。尽管如此,原始的Hodgkin-Huxley模型仍被广泛使用,并且很少为从中提取鱿鱼的巨大轴突建模。在这里,我们介绍了霍奇金-赫克斯利模型的一个新家族,该模型正确地说明了钠的进入,动作电位的宽度,并且其电压门控通道显示的动力学非常类似于哺乳动物神经元中的最新实验观察结果。我们在这里谈论一类模型,是因为该模型是由一个唯一的参数来参数化的,该参数的变化允许重现从皮层锥体神经元到浦肯野细胞的整个实验观察结果,从而产生了一个非常经济的框架,可以对各种不同的模型进行建模中枢神经元。本文演示了性能,并讨论了这个新系列模型的性质。

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