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小鼠脊髓背角深部甘氨酸能中间神经元对运动表现的多模态感觉控制。

Multimodal sensory control of motor performance by glycinergic interneurons of the mouse spinal cord deep dorsal horn.

机构信息

Cell Biology and Neuroscience Department, Rutgers University, The State University of New Jersey, New Brunswick, NJ, USA; W.M. Keck Center for Collaborative Neuroscience, Rutgers University, The State University of New Jersey, New Brunswick, NJ, USA.

Cell Biology and Neuroscience Department, Rutgers University, The State University of New Jersey, New Brunswick, NJ, USA; W.M. Keck Center for Collaborative Neuroscience, Rutgers University, The State University of New Jersey, New Brunswick, NJ, USA; Neuroscience PhD program, Rutgers Robert Wood Johnson Medical School, Piscataway, NJ, USA.

出版信息

Neuron. 2024 Apr 17;112(8):1302-1327.e13. doi: 10.1016/j.neuron.2024.01.027. Epub 2024 Mar 6.

Abstract

Sensory feedback is integral for contextually appropriate motor output, yet the neural circuits responsible remain elusive. Here, we pinpoint the medial deep dorsal horn of the mouse spinal cord as a convergence point for proprioceptive and cutaneous input. Within this region, we identify a population of tonically active glycinergic inhibitory neurons expressing parvalbumin. Using anatomy and electrophysiology, we demonstrate that deep dorsal horn parvalbumin-expressing interneuron (dPV) activity is shaped by convergent proprioceptive, cutaneous, and descending input. Selectively targeting spinal dPVs, we reveal their widespread ipsilateral inhibition onto pre-motor and motor networks and demonstrate their role in gating sensory-evoked muscle activity using electromyography (EMG) recordings. dPV ablation altered limb kinematics and step-cycle timing during treadmill locomotion and reduced the transitions between sub-movements during spontaneous behavior. These findings reveal a circuit basis by which sensory convergence onto dorsal horn inhibitory neurons modulates motor output to facilitate smooth movement and context-appropriate transitions.

摘要

感觉反馈对于上下文适当的运动输出至关重要,但负责的神经回路仍然难以捉摸。在这里,我们将小鼠脊髓的背角深部内侧确定为本体感觉和皮肤输入的汇聚点。在这个区域内,我们鉴定出一群持续活跃的甘氨酸能抑制性神经元,表达 Parvalbumin。通过解剖学和电生理学,我们证明深部背角表达 Parvalbumin 的中间神经元 (dPV) 的活动受到本体感觉、皮肤和下行输入的共同塑造。通过有针对性地靶向脊髓 dPV,我们揭示了它们对运动前和运动网络的广泛同侧抑制,并使用肌电图 (EMG) 记录证明了它们在门控感觉诱发的肌肉活动中的作用。dPV 消融改变了跑步机运动过程中的肢体运动学和步周期时间,并减少了自发行为过程中各小动作之间的转换。这些发现揭示了感觉汇聚到背角抑制性神经元上的回路基础,调节运动输出以促进运动平稳和适应上下文的转换。

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