Guan Sudong, Ma Shanfeng, Zhu Yan, Wang Jinhui
Department of Physiology, Bengbu Medical College, Anhui 233000, China.
Brain Res. 2006 Jun 30;1097(1):59-64. doi: 10.1016/j.brainres.2006.04.092. Epub 2006 May 30.
Cerebellum is involved in the motion coordination and working memory, to which spike programming at Purkinje neurons are essential. The development of Purkinje neurons in the embryonic stage has been well studied. However, it is not clear about the maturation of their intrinsic property related to spike programming during postnatal period. We developed the approach to quantify the intrinsic property of sequential spikes with whole-cell recording, and analyzed the postnatal development of Purkinje neurons in cerebellar slices. Our results demonstrate that the threshold potentials shift toward more negatively than resting membrane potential, refractory periods following each of spikes decrease, as well as the relationship between refractory periods and inter-spike intervals converts to be more linear during the postnatal maturation. This postnatal plasticity of neuronal intrinsic properties enhances the firing ability and spike capacity, in turn strengthens spike programming, at cerebellar Purkinje neurons.
小脑参与运动协调和工作记忆,浦肯野神经元的动作电位编程对此至关重要。胚胎期浦肯野神经元的发育已得到充分研究。然而,关于其在出生后与动作电位编程相关的内在特性的成熟情况尚不清楚。我们开发了一种通过全细胞记录来量化连续动作电位内在特性的方法,并分析了小脑切片中浦肯野神经元的出生后发育情况。我们的结果表明,在出生后成熟过程中,阈电位向比静息膜电位更负的方向移动,每个动作电位后的不应期缩短,并且不应期与动作电位间隔之间的关系转变为更线性。神经元内在特性的这种出生后可塑性增强了放电能力和动作电位发放能力,进而加强了小脑浦肯野神经元的动作电位编程。