Cerminara Nadia L, Rawson John A
Department of Physiology, Monash University, Clayton Victoria 3800, Australia.
J Neurosci. 2004 May 12;24(19):4510-7. doi: 10.1523/JNEUROSCI.4530-03.2004.
It is well established that the climbing fiber (CF) input to a cerebellar Purkinje cell (PC) can exert a controlling influence on the background simple spike (SS) activity of the cell, in that repetitive stimulation of CFs causes a decrease in SS activity, and removal or inactivation of CFs is followed by a rise in activity. In the present study, the effects of inactivation of CFs in the short term and longer term (hours) were investigated in anesthetized rats to determine how the CFs control the PC SS activity. Inactivation of the CF input to a PC was accomplished by either reversibly inactivating with lignocaine or by microlesioning the inferior olive. Consistent with previous findings, CF removal caused a transformation of the PC firing pattern, with SSs discharging more regularly and rising to an exceptionally high level. In cases in which CF activity resumed, SS rate declined to control levels within a few seconds. However, with sustained CF inactivation (30 min to 5 hr), SS activity continues to rise progressively and develops an oscillating firing pattern, consisting of alternating bursts of high-frequency discharge at up to 100-150 Hz followed by 10-20 sec periods of electrical quiescence. No accompanying changes in the threshold for evoking SSs via the parallel fibers were seen to accompany the increases in tonic SS activity. We conclude that the increase in SS activity that follows CF inactivation could be caused by the removal of an inhibitory action that CFs exert on the intrinsic pacemaker present in PCs under normal conditions.
已有充分证据表明,小脑浦肯野细胞(PC)的攀缘纤维(CF)输入可对该细胞的背景简单锋电位(SS)活动施加控制性影响,即重复刺激CF会导致SS活动降低,而去除或使CF失活后活动会增加。在本研究中,在麻醉大鼠中研究了CF短期和长期(数小时)失活的影响,以确定CF如何控制PC的SS活动。通过用利多卡因可逆性失活或通过对下橄榄核进行微损伤来实现对PC的CF输入的失活。与先前的发现一致,去除CF导致PC放电模式发生转变,SS放电更加规律并升至异常高的水平。在CF活动恢复的情况下,SS频率在几秒钟内降至对照水平。然而,随着CF持续失活(30分钟至5小时),SS活动继续逐渐增加并形成振荡放电模式,由高达100 - 150Hz的高频放电交替爆发组成,随后是10 - 20秒的电静息期。在紧张性SS活动增加的同时,未观察到通过平行纤维诱发SS的阈值有伴随变化。我们得出结论,CF失活后SS活动的增加可能是由于去除了CF在正常条件下对PC中存在的内在起搏器施加的抑制作用。