Guangdong-Hongkong-Macau CNS Regeneration Institute of Jinan University, Key Laboratory of CNS Regeneration (Jinan University)-Ministry of Education, Jinan University, Huangpu Avenue West 601, Guangzhou, 510632, People's Republic of China.
Neuroscience and Neurorehabilitation Institute, University of Health and Rehabilitation Sciences, Qingdao, 266071, Shandong, People's Republic of China.
Mol Neurobiol. 2022 Aug;59(8):5179-5192. doi: 10.1007/s12035-022-02910-7. Epub 2022 Jun 9.
Inactivation of Celsr3 in the forebrain results in defects of longitudinal axonal tracts such as the corticospinal tract. In this study, we inactivated Celsr3 in the brainstem using En1-Cre mice (Celsr3 cKO) and analyzed axonal and behavioral phenotypes. Celsr3 cKO animals showed an 83% reduction of rubrospinal axons and 30% decrease of corticospinal axons in spinal segments, associated with increased branching of dopaminergic fibers in the ventral horn. Decreases of spinal motoneurons, neuromuscular junctions, and electromyographic signal amplitude of the biceps were also found in mutant animals. Mutant mice had impaired motor coordination and defective response to heavy mechanical stimulation, but no disability in walking and food pellet handling. Transsynaptic tracing demonstrated that rubrospinal axons synapse on spinal neurons in the deep layer of the dorsal horn, and mechanical stimulation of hindpaws induced strong calcium signal of red nuclei in control mice, which was less prominent in mutant mice. In conclusion, Celsr3 regulates development of spinal descending axons and the motor network in cell and non-cell autonomous manners, and the maturation of the rubrospinal system is required for motor coordination and response to mechanical stimulation.
在大脑前脑区域中使 Celsr3 失活会导致长轴突束(如皮质脊髓束)的缺陷。在这项研究中,我们使用 En1-Cre 小鼠(Celsr3 cKO)在脑干中使 Celsr3 失活,并分析了轴突和行为表型。Celsr3 cKO 动物的红核脊髓束轴突减少了 83%,皮质脊髓束轴突减少了 30%,同时腹角中的多巴胺能纤维分支增加。突变动物还表现出脊髓运动神经元、神经肌肉接头和二头肌肌电图信号幅度的减少。突变小鼠运动协调能力受损,对重度机械刺激的反应有缺陷,但行走和处理食物颗粒的能力没有障碍。突触追踪表明,红核脊髓束轴突在背角深层的脊髓神经元上形成突触,在对照组小鼠中,后爪的机械刺激会引起红核的强烈钙信号,而在突变小鼠中则不那么明显。总之,Celsr3 以细胞自主和非细胞自主的方式调节脊髓下行轴突和运动网络的发育,红核脊髓系统的成熟对于运动协调和对机械刺激的反应是必需的。