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首页> 外文期刊>Journal of Neurophysiology >Interaction of the frontal eye field and superior colliculus for saccade generation.
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Interaction of the frontal eye field and superior colliculus for saccade generation.

机译:额眼视野与上丘的相互作用,以产生扫视。

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Both the frontal eye field (FEF) in the prefrontal cortex and the superior colliculus (SC) on the roof of the midbrain participate in the generation of rapid or saccadic eye movements and both have projections to the premotor circuits of the brain stem where saccades are ultimately generated. In the present experiments, we tested the contributions of the pathway from the FEF to the premotor circuitry in the brain stem that bypasses the SC. We assayed the contribution of the FEF to saccade generation by evoking saccades with direct electrical stimulation of the FEF. To test the role of the SC in conveying information to the brain stem, we inactivated the SC, thereby removing the circuit through the SC to the brain stem, and leaving only the direct FEF-brain stem pathway. If the contributions of the direct pathway were substantial, removal of the SC should have minimal effect on the FEF stimulation, whereas if the FEF stimulation were dependent on the SC, removal of the SC should alter the effect of FEF stimulation. By acutely inactivating the SC, instead of ablating it, we were able to test the efficiency of the direct FEF-brain stem pathway before substantial compensatory mechanisms could mask the effect of removing the SC. We found two striking effects of SC inactivation. In the first, we stimulated the FEF at a site that evoked saccades with vectors that were very close to those evoked at the site of the SC inactivation, and with such optimal alignment, we found that SC inactivation eliminated the saccades evoked by FEF stimulation. The second effect was evident when the FEF evoked saccades were disparate from those evoked in the SC, and in this case we observed a shift in the direction of the evoked saccade that was consistent with the SC inactivation removing a component of a vector average. Together these observations lead to the conclusion that in the nonablated monkey the direct FEF-brain stem pathway is not functionally sufficient to generate accurate saccades in the absence of the indirect pathway that courses from the FEF through the SC to the brain stem circuitry. We suggest that the recovery of function following SC ablation that has been seen in previous studies must result not from the use of an already functioning parallel pathway but from neural plasticity within the saccadic system.
机译:前额皮层的额眼视野(FEF)和中脑顶上的上丘(SC)均参与快速或眼跳运动的产生,并且两者都投射到发生扫视的脑干前运动回路最终产生。在本实验中,我们测试了从FEF到绕过SC的脑干中前运动回路的通路的贡献。我们通过激发FEF的直接电刺激诱发扫视分析了FEF对扫视产生的贡献。为了测试SC在将信息传递到脑干中的作用,我们使SC失活,从而消除了通过SC到达脑干的回路,只保留了直接的FEF脑干途径。如果直接途径的贡献很大,SC的去除对FEF刺激的影响应最小,而如果FEF刺激取决于SC,则SC的去除应改变FEF刺激的影响。通过急性灭活SC,而不是消融SC,我们能够在充分的补偿机制掩盖去除SC的作用之前测试直接FEF脑干途径的效率。我们发现了SC灭活的两个惊人效果。首先,我们用与SC失活位点诱发的载体非常接近的载体刺激了诱发扫视的部位的FEF,并通过这种最佳比对,我们发现SC失活消除了FEF刺激诱发的扫视。当FEF诱发的扫视与SC中诱发的扫视不同时,第二个效果显而易见,在这种情况下,我们观察到诱发的扫视方向发生了变化,这与SC灭活消除了矢量平均值的一部分是一致的。这些观察结果共同得出结论,在没有消融的猴子中,直接FEF-脑干途径在功能上不足以产生准确的扫视,而没有从FEF穿过SC到脑干回路的间接途径。我们建议,在先前的研究中已经看到,SC消融后功能的恢复一定不是由于使用已经起作用的平行途径引起的,而是由于神经系统内的神经可塑性引起的。

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