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首页> 外文期刊>Journal of Neurophysiology >Developmental changes in the electrophysiological properties of brain stem trigeminal neurons during pattern (barrelette) formation.
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Developmental changes in the electrophysiological properties of brain stem trigeminal neurons during pattern (barrelette) formation.

机译:模式(barrelette)形成过程中脑干三叉神经元电生理特性的发育变化。

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In the brain stem trigeminal nuclei of rodents there is a patterned representation of whiskers and sinus hairs. The subnucleus interpolaris (SPI) contains the largest and the most conspicuous whisker patterns (barrelettes). Although neural activity plays a role in pattern formation, little is known about the electrophysiological properties of developing barrelette neurons. Here we examined the functional state of early postnatal SPI neurons during and after the consolidation of patterns by using in vitro intracellular recording techniques. After the consolidation of barrelettes [>/= postnatal day (P)4], responses to intracellular current injection consistently reflected the activation of a number voltage-dependent conductances. Most notable was a mixed cation conductance (IH) that prevented strong hyperpolarization and a large low-threshold Ca2+ conductance, which led to Ca2+ spikes and burst firing. At the oldest ages tested (P11-P14) some cells also exhibited an outward K+ conductance (IA), which led to significant delays in action-potential firing. Between P0-3, a time when the formation of barrelettes in the brain stem is still susceptible to damage of the sensory periphery, cells responded linearly to intracellular current injection, indicating they either lacked such voltage-gated properties or weakly expressed them. At all ages tested (P0-14), SPI cells were capable of generating trains of action potentials in response to intracellular injection of depolarizing current pulses. However, during the first few days of postnatal life, spikes were shorter and longer. Additionally, spike trains rose more linearly with stimulus intensity and showed frequency accommodation at early ages. Taken together, these results indicate that the electrophysiological properties of SPI neurons change markedly during the period of barrelette consolidation. Moreover, the properties of developing SPI neurons may play a significant role in pattern formation by minimizing signal distortion and ensuring that excitatory responses from sensory periphery are accurately received and transmitted according to stimulus strength.
机译:在啮齿动物的脑干三叉神经核中,有晶须和鼻窦毛的图案表示。极间亚核(SPI)包含最大和最明显的晶须图案(barrelettes)。尽管神经活动在模式形成中起作用,但对发育中的桶状神经元的电生理特性知之甚少。在这里,我们通过使用体外细胞内记录技术,在模式巩固期间和之后检查了早期产后SPI神经元的功能状态。桶状体整合后[> / =出生后一天(P)4],对细胞内电流注入的反应始终反映出许多电压依赖性电导的激活。最值得注意的是,混合阳离子电导(IH)阻止了强超极化作用和大的低阈值Ca2 +电导,导致Ca2 +尖峰和脉冲放电。在测试的最高年龄(P11-P14),一些细胞还表现出向外的K +电导(IA),这导致动作电位发射的显着延迟。在P0-3之间(此时脑干中的小桶形成仍易受感觉边缘的损害),细胞对细胞内电流注入呈线性反应,表明它们要么缺乏这种电压门控特性,要么表达能力很弱。在所有测试的年龄(P0-14),SPI细胞都能够响应细胞内注射的去极化电流脉冲而产生一系列动作电位。但是,在出生后的头几天,峰值越来越短。此外,穗状花序随刺激强度的增加而呈线性增长,并在幼年时表现出频率适应性。综上所述,这些结果表明在桶形巩固期间,SPI神经元的电生理特性发生了显着变化。此外,发育中的SPI神经元的特性可能会通过最小化信号失真并确保根据刺激强度正确接收和传递来自感官周围的兴奋反应来在模式形成中发挥重要作用。

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