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首页> 外文期刊>The Journal of Physiology >Lamina-specific membrane and discharge properties of rat spinal dorsal horn neurones in vitro.
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Lamina-specific membrane and discharge properties of rat spinal dorsal horn neurones in vitro.

机译:大鼠脊髓背角神经元的层特异性膜和放电特性

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Membrane and discharge properties determine the input-output relationship of neurones and are therefore of paramount importance for the functions of neural circuits. Here, we have tested the hypothesis that neurones in different laminae of the spinal dorsal horn differ in their electrophysiological properties. Whole-cell patch-clamp recordings from dorsal horn neurones in a rat transverse spinal cord slice preparation were used to record active and passive membrane properties. Neurones from superficial dorsal horn laminae had higher membrane resistances and broader action potentials than deep dorsal horn neurones. Action potential thresholds were highest in lamina II neurones, representing low membrane excitability. Five types of firing patterns were identified in response to depolarising current injections. Tonic-firing neurones discharged action potentials at regular intervals throughout the current pulse. Delayed-firing neurones showed a delayed onset of firing in response to current injections thatwas due to activation of a transient voltage-dependent outward current, presumably an A-current. Another group of neurones fired a short initial burst of action potentials. Single-spiking neurones discharged only one action potential at the onset of a depolarising pulse. Phasic-bursting neurones showed irregular bursts of action potentials. Firing patterns were unequally distributed among laminae. Tonic-firing neurones were numerous in lamina I and deeper laminae but were not found in lamina II. Delayed-firing neurones were encountered in laminae I and II but not in deeper laminae. Most of the neurones showing an initial burst were found in lamina II. These differences in membrane and discharge properties probably contribute to lamina-specific processing of sensory, including nociceptive, information. (Resubmitted 27 January 2002; accepted after revision 28 February 2002)
机译:膜和放电特性决定了神经元的输入输出关系,因此对于神经回路的功能至关重要。在这里,我们测试了一种假设,即脊髓背角的不同薄片中的神经元的电生理特性不同。在大鼠横向脊髓切片制备中,从背角神经元获得全细胞膜片钳记录,用于记录主动和被动膜的特性。与深背角神经元相比,来自浅表背角薄片的神经元具有更高的膜抵抗力和更宽的动作电位。 lamina II神经元的动作电位阈值最高,表示膜兴奋性低。响应于去极化电流注入,确定了五种类型的点火模式。在整个电流脉冲中,有声调神经元以规则的时间间隔释放动作电位。延迟放电的神经元响应于电流注入而延迟触发放电,这是由于瞬态电压相关的向外电流(可能是A电流)的激活所致。另一组神经元激发了短暂的动作电位初始爆发。单尖峰神经元在去极化脉冲开始时仅释放一个动作电位。阵发性神经元显示动作电位不规则爆发。发射模式在薄片之间不均匀分布。在第一板层和较深的板层中,生药的神经元数量众多,但在第二板层中未发现。延迟发射的神经元在层I和层II中遇到,但在较深层中则没有。大多数显示初始爆发的神经元都在椎板II中发现。膜和放电特性的这些差异可能有助于感觉的层特异性处理,包括伤害性信息。 (2002年1月27日重新提交; 2002年2月28日修订后接受)

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