Voltage-gated ion currents in embryogenesis.

I D Dietzel
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Abstract

Excitability is not an exclusive property of differentiated cells, as egg cells already express a surprising variety of species-specific combinations of voltage-gated ion channels. After fertilization, ion currents are generally down-regulated and reappear at about the time of the last mitosis of neuronal precursor cells. When ganglia have formed, Na+ and Ca2+ currents are generally present. The first voltage-gated ion currents in differentiating neurons are unambiguously identified by kinetic and pharmacological criteria according to the channel classifications defined for ion currents in more mature cells. Specialization of different neuronal subtypes with respect to the expression of characteristic patterns of ion channels occurs before neurites grow out and contact their targets. During maturation of committed neurons, the densities of ion currents change. Whereas low voltage-activated Ca2+ current are only transiently expressed in several types of cells Na+, high voltage activated Ca2+, and K+ currents are usually up-regulated until stable final values are reached in adult cells. The most challenging questions to be answered by future research concern the molecular mechanisms regulating the expression of the specific patterns of ion channels characteristic of different subtypes of neurons.

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胚胎发生中的电压门控离子电流。
兴奋性并不是分化细胞所独有的特性,因为卵细胞已经表达了各种各样的电压门控离子通道的物种特异性组合。受精后,离子流通常被下调,并在神经元前体细胞最后一次有丝分裂时重新出现。当神经节形成时,Na+和Ca2+电流通常存在。根据更成熟细胞中离子电流的通道分类,通过动力学和药理学标准明确地确定了分化神经元中的第一个电压门控离子电流。在神经突生长并接触它们的目标之前,不同的神经元亚型在离子通道特征模式的表达方面发生了特化。在承诺神经元成熟过程中,离子流密度发生变化。低电压激活的Ca2+电流仅在几种类型的细胞中短暂表达,而高电压激活的Ca2+和K+电流通常上调,直到在成年细胞中达到稳定的最终值。未来研究中最具挑战性的问题是调节不同亚型神经元特定离子通道模式表达的分子机制。
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