猕猴脊髓损伤后运动皮质轴突突起的椎上可塑性。

IF 2.3 4区 医学 Q3 NEUROSCIENCES
Satoko Ueno, Reona Yamaguchi, Kaoru Isa, Toshinari Kawasaki, Masahiro Mitsuhashi, Kenta Kobayashi, Jun Takahashi, Tadashi Isa
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引用次数: 0

摘要

在猕猴脊髓损伤后的恢复过程中,与损伤同侧的感觉运动皮层(同侧损伤,未受影响)被激活,并在指导受影响手的运动中发挥作用。同侧感觉运动皮层对这些运动的有效调节不仅取决于其直接向目标肌肉发送运动命令的能力,还取决于其与高级运动规划系统(如皮质-基底神经节和皮质-小脑回路)的协调功能。在这项研究中,我们使用顺行性病毒示踪剂,分析了两只颈中水平亚半切面脊髓损伤的猕猴脑干水平的对侧(受影响的)初级运动皮层(M1)皮质纤维的轴突轨迹。损伤后的抓握运动明显恢复。我们发现,与同侧(未受影响的)M1相比,从对侧M1到对侧壳核、同侧外侧网状核和对侧脑桥核的轴突投射增加。我们认为,这些从对侧M1到非优势侧纹状体和小脑前核的增加的投射可能通过皮质-基底节区和皮质-小脑回路募集同侧M1,以控制患处恢复期间的手部运动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Supraspinal Plasticity of Axonal Projections From the Motor Cortex After Spinal Cord Injury in Macaques

Supraspinal Plasticity of Axonal Projections From the Motor Cortex After Spinal Cord Injury in Macaques

During recovery following spinal cord injury in the macaque, the sensorimotor cortex on the same side as the injury (ipsilesional, unaffected) becomes activated and plays a role in guiding movements of the affected hand. Effective regulation of these movements by the ipsilesional sensorimotor cortex would depend not only on its ability to send motor commands directly to target muscles but also on coordinated functioning with higher-level motor planning systems such as the cortico-basal ganglia and cortico-cerebellar loops. In this study, using anterograde viral tracers, we analyzed the axonal trajectories of corticofugal fibers from the contralesional (affected) primary motor cortex (M1) at the brainstem level in two macaque monkeys with sub-hemisection spinal cord injury at the mid-cervical level. They showed considerable recovery of grasping movements after injury. We found an increase in axonal projections from the contralesional M1 to the contralateral putamen, ipsilateral lateral reticular nucleus, and contralateral pontine nucleus compared to projections from the ipsilesional (unaffected) M1. We propose that these increased projections from the contralesional M1 to the striatum and precerebellar nuclei on the nondominant side may function to recruit the ipsilesional M1 through the cortico-basal ganglia and cortico-cerebellar loops to control hand movements on the affected side during recovery.

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来源期刊
CiteScore
5.80
自引率
8.00%
发文量
158
审稿时长
3-6 weeks
期刊介绍: Established in 1891, JCN is the oldest continually published basic neuroscience journal. Historically, as the name suggests, the journal focused on a comparison among species to uncover the intricacies of how the brain functions. In modern times, this research is called systems neuroscience where animal models are used to mimic core cognitive processes with the ultimate goal of understanding neural circuits and connections that give rise to behavioral patterns and different neural states. Research published in JCN covers all species from invertebrates to humans, and the reports inform the readers about the function and organization of nervous systems in species with an emphasis on the way that species adaptations inform about the function or organization of the nervous systems, rather than on their evolution per se. JCN publishes primary research articles and critical commentaries and review-type articles offering expert insight in to cutting edge research in the field of systems neuroscience; a complete list of contribution types is given in the Author Guidelines. For primary research contributions, only full-length investigative reports are desired; the journal does not accept short communications.
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