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腹侧丘脑投射的 DCN 神经元调节小鼠的联想感觉运动反应。

Ventromedial Thalamus-Projecting DCN Neurons Modulate Associative Sensorimotor Responses in Mice.

机构信息

Department of Physiology, College of Basic Medical Sciences, Army Medical University, Chongqing, 400038, China.

Experimental Center of Basic Medicine, College of Basic Medical Sciences, Army Medical University, Chongqing, 400038, China.

出版信息

Neurosci Bull. 2022 May;38(5):459-473. doi: 10.1007/s12264-021-00810-9. Epub 2022 Jan 6.

Abstract

The deep cerebellar nuclei (DCN) integrate various inputs to the cerebellum and form the final cerebellar outputs critical for associative sensorimotor learning. However, the functional relevance of distinct neuronal subpopulations within the DCN remains poorly understood. Here, we examined a subpopulation of mouse DCN neurons whose axons specifically project to the ventromedial (Vm) thalamus (DCN neurons), and found that these neurons represent a specific subset of DCN units whose activity varies with trace eyeblink conditioning (tEBC), a classical associative sensorimotor learning task. Upon conditioning, the activity of DCN neurons signaled the performance of conditioned eyeblink responses (CRs). Optogenetic activation and inhibition of the DCN neurons in well-trained mice amplified and diminished the CRs, respectively. Chemogenetic manipulation of the DCN neurons had no effects on non-associative motor coordination. Furthermore, optogenetic activation of the DCN neurons caused rapid elevated firing activity in the cingulate cortex, a brain area critical for bridging the time gap between sensory stimuli and motor execution during tEBC. Together, our data highlights DCN neurons' function and delineates their kinematic parameters that modulate the strength of associative sensorimotor responses.

摘要

小脑深部核(DCN)整合小脑的各种输入,并形成最终的小脑输出,这对于联想感觉运动学习至关重要。然而,DCN 内不同神经元亚群的功能相关性仍知之甚少。在这里,我们研究了一组小鼠 DCN 神经元,其轴突专门投射到腹内侧(Vm)丘脑(DCN 神经元),并发现这些神经元代表了 DCN 单位的一个特定子集,其活动随痕迹眨眼条件反射(tEBC)而变化,这是一种经典的联想感觉运动学习任务。在条件反射时,DCN 神经元的活动标志着条件反射眨眼反应(CR)的表现。在训练有素的小鼠中,DCN 神经元的光遗传学激活和抑制分别放大和减少了 CR。DCN 神经元的化学遗传操作对非联想运动协调没有影响。此外,DCN 神经元的光遗传学激活导致扣带皮层的快速升高的放电活动,扣带皮层是在 tEBC 期间弥合感觉刺激和运动执行之间的时间差距的关键大脑区域。总之,我们的数据突出了 DCN 神经元的功能,并描绘了它们的运动学参数,这些参数调节联想感觉运动反应的强度。

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