Plasticity and alterations of trunk motor cortex following spinal cord injury and non-stepping robot and treadmill training.

Plasticity and alterations of trunk motor cortex following spinal cord injury and non-stepping robot and treadmill training.
复制标题

脊髓损伤和非步进机器人和跑步机训练后躯干运动皮层的可塑性和改变。

DOI:
10.1016/j.expneurol.2014.03.012
复制
发表时间:
2014
影响因子:
5.3
通讯作者:
Giszter,SimonF
Giszter,SimonF
中科院分区:
医学2区
文献类型:
--
作者:
Oza,ChintanS;Giszter,SimonF

文献摘要

相似文献

Spinal cord injury (SCI) induces significant reorganization in the sensorimotor cortex. Trunk motor control is crucial for postural stability and propulsion after low thoracic SCI and several rehabilitative strategies are aimed at trunk stability and control. However little is known about the effect of SCI and rehabilitation training on trunk motor representations and their plasticity in the cortex. Here, we used intracortical microstimulation to examine the motor cortex representations of the trunk in relation to other representations in three groups of chronic adult complete low thoracic SCI rats: chronic untrained, treadmill trained (but ‘non-stepping’) and robot assisted treadmill trained (but ‘non-stepping’) and compared with a group of normal rats. Our results demonstrate extensive and significant reorganization of the trunk motor cortex after chronic adult SCI which includes (1) expansion and rostral displacement of trunk motor representations in the cortex, with the greatest significant increase observed for rostral (to injury) trunk, and slight but significant increase of motor representation for caudal (to injury) trunk at low thoracic levels in all spinalized rats; (2) significant changes in coactivation and the synergy representation (or map overlap) between different trunk muscles and between trunk and forelimb. No significant differences were observed between the groups of transected rats for the majority of the comparisons. However, (3) the treadmill and robot-treadmill trained groups of rats showed a further small but significant rostral migration of the trunk representations, beyond the shift caused by transection alone. We conclude that SCI induces a significant reorganization of the trunk motor cortex, which is not qualitatively altered by non-stepping treadmill training or non-stepping robot assisted treadmill training, but is shifted further from normal topography by the training. This shift may potentially make subsequent rehabilitation with stepping longer or less successful.