Fidelin Kevin, Djenoune Lydia, Stokes Caleb, Prendergast Andrew, Gomez Johanna, Baradel Audrey, Del Bene Filippo, Wyart Claire
Institut du Cerveau et de la Moelle épinière (ICM), 75013 Paris, France; INSERM UMRS 1127, 75013 Paris, France; CNRS UMR 7225, 75013 Paris, France; UPMC Univ Paris 06, 75005 Paris, France.
Institut du Cerveau et de la Moelle épinière (ICM), 75013 Paris, France; INSERM UMRS 1127, 75013 Paris, France; CNRS UMR 7225, 75013 Paris, France; UPMC Univ Paris 06, 75005 Paris, France; Museum National d'Histoire Naturelle, 75005 Paris, France.
Curr Biol. 2015 Dec 7;25(23):3035-47. doi: 10.1016/j.cub.2015.09.070. Epub 2015 Nov 19.
The cerebrospinal fluid (CSF) constitutes an interface through which chemical cues can reach and modulate the activity of neurons located at the epithelial boundary within the entire nervous system. Here, we investigate the role and functional connectivity of a class of GABAergic sensory neurons contacting the CSF in the vertebrate spinal cord and referred to as CSF-cNs. The remote activation of CSF-cNs was shown to trigger delayed slow locomotion in the zebrafish larva, suggesting that these cells modulate components of locomotor central pattern generators (CPGs). Combining anatomy, electrophysiology, and optogenetics in vivo, we show that CSF-cNs form active GABAergic synapses onto V0-v glutamatergic interneurons, an essential component of locomotor CPGs. We confirmed that activating CSF-cNs at rest induced delayed slow locomotion in the fictive preparation. In contrast, the activation of CSF-cNs promptly inhibited ongoing slow locomotion. Moreover, selective activation of rostral CSF-cNs during ongoing activity disrupted rostrocaudal propagation of descending excitation along the spinal cord, indicating that CSF-cNs primarily act at the premotor level. Altogether, our results demonstrate how a spinal GABAergic sensory neuron can tune the excitability of locomotor CPGs in a state-dependent manner by projecting onto essential components of the excitatory premotor pool.
脑脊液(CSF)构成了一个界面,化学信号可以通过这个界面到达并调节位于整个神经系统上皮边界处的神经元的活动。在这里,我们研究了一类与脊椎动物脊髓中的脑脊液接触的GABA能感觉神经元(称为脑脊液接触神经元,CSF-cNs)的作用和功能连接。脑脊液接触神经元的远程激活被证明能触发斑马鱼幼虫延迟的缓慢运动,这表明这些细胞调节运动中枢模式发生器(CPG)的组成部分。结合体内解剖学、电生理学和光遗传学,我们发现脑脊液接触神经元在运动中枢模式发生器的重要组成部分V0-v谷氨酸能中间神经元上形成活跃的GABA能突触。我们证实,在虚拟准备中,静息时激活脑脊液接触神经元会诱导延迟的缓慢运动。相比之下,脑脊液接触神经元的激活会立即抑制正在进行的缓慢运动。此外,在持续活动期间选择性激活吻侧脑脊液接触神经元会破坏沿脊髓下行兴奋的头尾传播,这表明脑脊液接触神经元主要在运动前水平起作用。总之,我们的结果表明,脊髓GABA能感觉神经元如何通过投射到兴奋性运动前神经元池的重要组成部分,以状态依赖的方式调节运动中枢模式发生器的兴奋性。