Rao Jia-Sheng, Manxiu Ma, Zhao Can, Xi Yue, Yang Zhao-Yang, Zuxiang Liu, Li Xiao-Guang
Department of Biomedical Engineering, School of Biological Science and Medical Engineering, Beihang University, Beijing 100191, China.
State Key Laboratory of Brain and Cognitive Science, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China.
Biomed Res Int. 2013;2013:753061. doi: 10.1155/2013/753061. Epub 2013 Dec 29.
The effects of traumatic spinal cord injury (SCI) on the changes in the central nervous system (CNS) over time may depend on the dynamic interaction between the structural integrity of the spinal cord and the capacity of the brain plasticity. Functional magnetic resonance imaging (fMRI) was used in a longitudinal study on five rhesus monkeys to observe cerebral activation during upper limb somatosensory tasks in healthy animals and after unilateral thoracic SCI. The changes in the spinal cord diameters were measured, and the correlations among time after the lesion, structural changes in the spinal cord, and primary somatosensory cortex (S1) reorganization were also determined. After SCI, activation of the upper limb in S1 shifted to the region which generally dominates the lower limb, and the rostral spinal cord transverse diameter adjacent to the lesion exhibited obvious atrophy, which reflects the SCI-induced changes in the CNS. A significant correlation was found among the time after the lesion, the spinal cord atrophy, and the degree of contralateral S1 reorganization. The results indicate the structural changes in the spinal cord and the dynamic reorganization of the cerebral activation following early SCI stage, which may help to further understand the neural plasticity in the CNS.
创伤性脊髓损伤(SCI)对中枢神经系统(CNS)随时间变化的影响可能取决于脊髓结构完整性与脑可塑性能力之间的动态相互作用。在一项对五只恒河猴的纵向研究中,使用功能磁共振成像(fMRI)来观察健康动物以及单侧胸段脊髓损伤后上肢体感任务期间的大脑激活情况。测量了脊髓直径的变化,并确定了损伤后时间、脊髓结构变化和初级体感皮层(S1)重组之间的相关性。脊髓损伤后,S1中上肢的激活转移到通常支配下肢的区域,与损伤相邻的脊髓头端横径出现明显萎缩,这反映了脊髓损伤引起的中枢神经系统变化。在损伤后时间、脊髓萎缩和对侧S1重组程度之间发现了显著相关性。结果表明早期脊髓损伤阶段后脊髓的结构变化和大脑激活的动态重组,这可能有助于进一步了解中枢神经系统中的神经可塑性。