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Post-natal development of electrophysiological properties of rat cerebral cortical pyramidal neurones.

机译:出生后大鼠大脑皮质锥体锥体神经元电生理特性的发展。

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摘要

1. The post-natal development of the electrophysiological properties of cortical layer V pyramidal neurons was investigated with intracellular recordings from rat sensorimotor cortical slices, in vitro. 2. At all ages post-natally (post-natal day 1 to day 36; P1-P36) neurons were capable of generating a train of Na+-dependent action potentials in response to intracellular injection of sufficient depolarizing current. During the second and third week post-natally, these action potentials changed substantially, becoming faster in both their rising and falling phases, shorter in duration, and larger in amplitude. 3. Both mature (greater than P21) and immature (P2-P4) cortical neurones could generate Ca2+-dependent action potentials only if a substantial portion of K+ conductances were blocked. The maximum rate of rise of Ca2+ spikes also increased with age. 4. The apparent input resistance, specific membrane resistance, and membrane time constant all decreased with age from P1 to P30. Immature neurones had I-V relationships that were substantially more linear than those of adult cells, although rectification was often present in both the hyperpolarizing and depolarizing range. Inward rectification in the depolarizing range was Na+ dependent and was substantially larger in mature versus immature neurones. 5. Single, or trains of, action potentials in immature neurones were followed by short duration (10-50 ms) and long duration (1-5 s) after-hyperpolarizations (a.h.p.s) respectively. The duration of the latter appeared to decrease with age. The presence of large a.h.p.s indicates that Ca2+ entry occurs during the action potential of immature, as well as mature, neurones. 6. Responses to intracellular injection of depolarizing current pulses indicated that immature neurones have frequency versus injected current (f-I) relationships which are in general less steep than those for adult neurones and more limited in terms of the range of firing frequencies. 7. Our results are consistent with the hypothesis that there is a considerable increase in the density of voltage-dependent ionic channels underlying the electro-responsiveness of cortical pyramidal neurones during post-natal development.
机译:1.用大鼠感觉运动皮层切片的细胞内记录,体外研究了皮质V层锥体神经元的电生理特性的产后发育。 2.在出生后的各个年龄段(出生后第1天到第36天; P1-P36),神经元都能够响应于细胞内注射足够的去极化电流而产生一系列Na +依赖性动作电位。在出生后第二周和第三周,这些动作电位发生了很大变化,在上升和下降阶段均变快,持续时间较短,振幅较大。 3.成熟的(大于P21)和不成熟的(P2-P4)皮层神经元都只有在大部分K +电导被阻滞时才能产生Ca2 +依赖的动作电位。 Ca2 +尖峰的最大上升率也随年龄增长而增加。 4.从P1到P30,随着年龄的增长,表观输入电阻,比膜电阻和膜时间常数均下降。未成熟的神经元的I-V关系比成年细胞的线性关系要线性得多,尽管在超极化和去极化范围内通常都存在整流作用。去极化范围内的向内整流依赖于Na +,并且与未成熟的神经元相比,内向整流明显更大。 5.在未极化的神经元中,单个动作或一系列动作电位之后分别是短时间(10-50 ms)和长时间(1-5 s)的超极化(a.h.p.s)。后者的持续时间似乎随着年龄的增长而减少。 a.h.p.s的存在表明Ca2 +进入发生在未成熟以及成熟的神经元的动作电位期间。 6.对细胞内注射去极化电流脉冲的响应表明,未成熟神经元具有频率与注入电流(f-I)的关系,通常不如成年神经元那么陡,并且在发射频率范围方面受到更多限制。 7.我们的结果与以下假设相符:在产后发育过程中,皮质锥体神经元的电响应性所依赖的电压依赖性离子通道的密度显着增加。

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