Department of Molecular Neuroscience, Graduate School of Medicine, Osaka University, Osaka, Japan.
WPI Immunology Frontier Research Center, Osaka University, Osaka, Japan.
Cell Death Dis. 2019 Jan 25;10(2):67. doi: 10.1038/s41419-019-1338-2.
Following incomplete spinal cord injury (SCI), reorganization of the corticospinal tract (CST) contributes to spontaneous motor recovery. Axotomized CST fibers form collaterals and make synapses with interneurons, followed by pruning of excess fibers. Although axonal pruning is involved in refinement of neural circuits, its molecular mechanisms and functional roles remain poorly understood. To address these questions, we performed dorsal hemisections of mouse thoracic spinal cord. We observed that Neuropilin-1 (Nrp1) mRNA was upregulated in layer 5 pyramidal neurons in the motor cortex 14 days after SCI, when the pruning occurred. Nrp1 knockdown using adeno-associated virus (AAV) vector encoding Nrp1 shRNA in the hindlimb motor area impaired the pruning of collaterals after SCI. Nrp1 knockout by injecting AAV vector encoding Cre recombinase into Nrp1 floxed mice also suppressed axonal pruning. Propriospinal neurons, interneurons that connect CST and motoneurons, expressed Semaphorin 3A (Sema3A), the ligand of Nrp1. Furthermore, the genetic deletion of Nrp1 specifically in the hindlimb motor area suppressed the recovery of skilled movement at 21 and 28 days after SCI. The present findings demonstrate that the pruning of collaterals mediated by Nrp1 is required for motor recovery after SCI, and suggest that refinement of the neuronal network facilitates motor recovery.
不完全性脊髓损伤(SCI)后,皮质脊髓束(CST)的重组有助于自发性运动恢复。轴突切断的 CST 纤维形成侧支并与中间神经元形成突触,随后多余的纤维被修剪。尽管轴突修剪参与了神经回路的细化,但它的分子机制和功能作用仍知之甚少。为了解决这些问题,我们对小鼠胸段脊髓进行了背侧半切。我们观察到,在 SCI 后 14 天,即修剪发生时,Nrp1 mRNA 在运动皮层的第 5 层锥体神经元中上调。使用编码 Nrp1 shRNA 的腺相关病毒(AAV)载体在下肢运动区进行 Nrp1 敲低会损害 SCI 后侧支的修剪。通过将编码 Cre 重组酶的 AAV 载体注入 Nrp1 floxed 小鼠来敲除 Nrp1 也抑制了轴突修剪。表达 Nrp1 配体 Semaphorin 3A(Sema3A)的脊髓前角神经元,即连接 CST 和运动神经元的中间神经元,也表达 Sema3A。此外,Nrp1 在下肢运动区的特异性基因缺失也抑制了 SCI 后 21 天和 28 天熟练运动的恢复。这些发现表明,Nrp1 介导的侧支修剪是 SCI 后运动恢复所必需的,并提示神经元网络的细化促进了运动恢复。