Nanyang Technological University (NTU), School of Biological Sciences, Singapore 637551, Singapore; NTU Institute for Health Technologies, Interdisciplinary Graduate School, Singapore 637553, Singapore; University of Warwick, School of Life Sciences, Coventry CV4 7AL, UK.
Nanyang Technological University (NTU), School of Biological Sciences, Singapore 637551, Singapore; University of Warwick, School of Life Sciences, Coventry CV4 7AL, UK.
Cell Rep. 2018 Feb 27;22(9):2322-2333. doi: 10.1016/j.celrep.2018.02.017.
The deep cerebellar nuclei (DCN) represent output channels of the cerebellum, and they transmit integrated sensorimotor signals to modulate limb movements. But the functional relevance of identifiable neuronal subpopulations within the DCN remains unclear. Here, we examine a genetically tractable population of neurons in the mouse interposed anterior nucleus (IntA). We show that these neurons represent a subset of glutamatergic neurons in the IntA and constitute a specific element of an internal feedback circuit within the cerebellar cortex and cerebello-thalamo-cortical pathway associated with limb control. Ablation and optogenetic stimulation of these neurons disrupt efficacy of skilled reach and locomotor movement and reveal that they control positioning and timing of the forelimb and hindlimb. Together, our findings uncover the function of a distinct neuronal subpopulation in the deep cerebellum and delineate the anatomical substrates and kinematic parameters through which it modulates precision of discrete and rhythmic limb movements.
小脑深部核(DCN)代表小脑的输出通道,它们传递整合的感觉运动信号以调节肢体运动。但是,DCN 内可识别的神经元亚群的功能相关性尚不清楚。在这里,我们研究了小鼠中间前核(IntA)中一种可遗传处理的神经元群体。我们表明,这些神经元代表 IntA 中谷氨酸能神经元的一个子集,并构成与肢体控制相关的小脑皮层和小脑丘脑皮质通路内部反馈回路的特定元件。这些神经元的消融和光遗传学刺激会破坏熟练的伸手和运动运动的功效,并表明它们控制前肢和后肢的定位和定时。总之,我们的发现揭示了深部小脑中一个独特的神经元亚群的功能,并描绘了它调节离散和有节奏的肢体运动精度的解剖学基质和运动学参数。