Soetedjo Robijanto, Kojima Yoshiko, Fuchs Albert
Department of Physiology and Biophysics and Washington National Primate Research Center, University of Washington, Seattle, WA, USA.
Prog Brain Res. 2008;171:153-9. doi: 10.1016/S0079-6123(08)00620-1.
The cerebellar oculomotor vermis (OMV) receives inputs from both the superior colliculus (SC) via the nucleus reticularis tegmenti pontis as mossy fibres and the inferior olive as climbing fibres. Lesion studies show that the OMV is necessary for the saccade amplitude adaptation that corrects persistent motor errors. In this study, we examined whether the complex spike (CS) activity due to climbing fibre inputs could serve as an error signal to drive saccade adaptation. When there was an error during behaviourally induced saccade dysmetrias, the probability of CS occurrence depended on the direction and size of the error. If this CS activity actually drives saccade adaptation, we speculate that adaptation should be equally efficient in all directions and that the course of adaptation could have two operating modes.
小脑动眼蚓部(OMV)通过脑桥被盖网状核接收来自上丘(SC)的苔藓纤维输入以及来自下橄榄核的攀爬纤维输入。损伤研究表明,OMV对于纠正持续性运动误差的扫视幅度适应性是必要的。在本研究中,我们研究了由攀爬纤维输入引起的复合动作电位(CS)活动是否可以作为驱动扫视适应性的误差信号。当行为诱发的扫视失调期间出现误差时,CS发生的概率取决于误差的方向和大小。如果这种CS活动实际上驱动扫视适应性,我们推测适应性在所有方向上应该同样有效,并且适应过程可能有两种运作模式。