De Zeeuw C I, Koekkoek S K, Wylie D R, Simpson J I
Department of Anatomy, Erasmus University Rotterdam, The Netherlands.
J Neurophysiol. 1997 Apr;77(4):1747-58. doi: 10.1152/jn.1997.77.4.1747.
Dendritic lamellar bodies have been reported to be associated with dendrodendritic gap junctions. In the present study we investigated this association at both the morphological and electrophysiological level in the olivocerebellar system. Because cerebellar GABAergic terminals are apposed to olivary dendrites coupled by gap junctions, and because lesions of cerebellar nuclei influence the coupling between neurons in the inferior olive, we postulated that if lamellar bodies and gap junctions are related, then the densities of both structures will change together when the cerebellar input is removed. Lesions of the cerebellar nuclei in rats and rabbits resulted in a reduction of the density of lamellar bodies, the number of lamellae per lamellar body, and the density of gap junctions in the inferior olive, whereas the number of olivary neurons was not significantly reduced. The association between lamellar bodies and electrotonic coupling was evaluated electrophysiologically in alert rabbits by comparing the occurrence of complex spike synchrony in different Purkinje cell zones of the flocculus that receive their climbing fibers from olivary subnuclei with different densities of lamellar bodies. The complex spike synchrony of Purkinje cell pairs, that receive their climbing fibers from an olivary subnucleus with a high density of lamellar bodies, was significantly higher than that of Purkinje cells, that receive their climbing fibers from a subnucleus with a low density of lamellar bodies. To investigate whether the complex spike synchrony is related to a possible synchrony between simple spikes, we recorded simultaneously the complex spike and simple spike responses of Purkinje cell pairs during natural visual stimulation. Synchronous simple spike responses did occur, and this synchrony tended to increase as the synchrony between the complex spikes increased. This relation raises the possibility that synchronously activated climbing fibers evoke their effects in part via the simple spike response of Purkinje cells. The present results indicate that dendritic lamellar bodies and dendrodendritic gap junctions can be downregulated concomitantly, and that the density of lamellar bodies in different olivary subdivisions is correlated with the degree of synchrony of their climbing fiber activity. Therefore these data support the hypothesis that dendritic lamellar bodies can be associated with dendrodendritic gap junctions. Considering that the density of dedritic lamellar bodies in the inferior olive is higher than in any other area of the brain, this conclusion implies that electrotonic coupling is important for the function of the olivocerebellar system.
据报道,树突状板层小体与树突 - 树突缝隙连接有关。在本研究中,我们在橄榄小脑系统的形态学和电生理学水平上研究了这种关联。由于小脑GABA能终末与通过缝隙连接耦合的橄榄核树突相邻,并且由于小脑核损伤会影响下橄榄核中神经元之间的耦合,我们推测,如果板层小体和缝隙连接相关,那么当去除小脑输入时,这两种结构的密度将一起变化。大鼠和家兔的小脑核损伤导致板层小体密度、每个板层小体的薄片数量以及下橄榄核中缝隙连接的密度降低,而橄榄核神经元的数量没有显著减少。通过比较绒球不同浦肯野细胞区中复杂峰同步的发生率,在清醒家兔中对板层小体与电紧张耦合之间的关联进行了电生理学评估,这些浦肯野细胞区从具有不同板层小体密度的橄榄亚核接收攀爬纤维。从具有高密度板层小体的橄榄亚核接收攀爬纤维的浦肯野细胞对的复杂峰同步性,显著高于从具有低密度板层小体的亚核接收攀爬纤维的浦肯野细胞。为了研究复杂峰同步是否与简单峰之间可能的同步有关,我们在自然视觉刺激期间同时记录了浦肯野细胞对的复杂峰和简单峰反应。确实出现了同步的简单峰反应,并且这种同步性倾向于随着复杂峰之间的同步性增加而增加。这种关系增加了同步激活的攀爬纤维部分通过浦肯野细胞的简单峰反应发挥作用的可能性。目前的结果表明,树突状板层小体和树突 - 树突缝隙连接可以同时下调,并且不同橄榄亚区中板层小体的密度与其攀爬纤维活动的同步程度相关。因此,这些数据支持树突状板层小体可以与树突 - 树突缝隙连接相关的假设。考虑到下橄榄核中树突状板层小体的密度高于大脑的任何其他区域,这一结论意味着电紧张耦合对橄榄小脑系统的功能很重要。