Chasing central nervous system plasticity: the brainstem’s contribution to locomotor recovery in rats with spinal cord injury

脑干 脊髓 神经科学 网状结构 皮质脊髓束 脊髓损伤 网状结缔组织 解剖 中枢神经系统 生物 医学 磁共振成像 放射科 磁共振弥散成像
作者
Björn Zörner,Lukas C. Bachmann,Linard Filli,Sandra Kapitza,Miriam Gullo,Marc Bolliger,Michelle L. Starkey,Martina Röthlisberger,Roman Gonzenbach,Martin E. Schwab
出处
期刊:Brain [Oxford University Press]
卷期号:137 (6): 1716-1732 被引量:109
标识
DOI:10.1093/brain/awu078
摘要

Anatomical plasticity such as fibre growth and the formation of new connections in the cortex and spinal cord is one known mechanism mediating functional recovery after damage to the central nervous system. Little is known about anatomical plasticity in the brainstem, which contains key locomotor regions. We compared changes of the spinal projection pattern of the major descending systems following a cervical unilateral spinal cord hemisection in adult rats. As in humans (Brown-Séquard syndrome), this type of injury resulted in a permanent loss of fine motor control of the ipsilesional fore- and hindlimb, but for basic locomotor functions substantial recovery was observed. Antero- and retrograde tracings revealed spontaneous changes in spinal projections originating from the reticular formation, in particular from the contralesional gigantocellular reticular nucleus: more reticulospinal fibres from the intact hemicord crossed the spinal midline at cervical and lumbar levels. The intact-side rubrospinal tract showed a statistically not significant tendency towards an increased number of midline crossings after injury. In contrast, the corticospinal and the vestibulospinal tract, as well as serotonergic projections, showed little or no side-switching in this lesion paradigm. Spinal adaptations were accompanied by modifications at higher levels of control including side-switching of the input to the gigantocellular reticular nuclei from the mesencephalic locomotor region. Electrolytic microlesioning of one or both gigantocellular reticular nuclei in behaviourally recovered rats led to the reappearance of the impairments observed acutely after the initial injury showing that anatomical plasticity in defined brainstem motor networks contributes significantly to functional recovery after injury of the central nervous system.
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