Deumens Ronald, Joosten Elbert A J, Waxman Stephen G, Hains Bryan C
Pain Management and Research Center, Department of Anesthesiology, Maastricht University Hospital, P. Debyelaan 25, P.O. Box 5800, 6200 AZ, Maastricht, The Netherlands.
Mol Neurobiol. 2008 Feb;37(1):52-63. doi: 10.1007/s12035-008-8016-1. Epub 2008 Apr 15.
Injury to the spinal cord (SCI) can produce a constellation of problems including chronic pain, autonomic dysreflexia, and motor dysfunction. Neuroplasticity in the form of fiber sprouting or the lack thereof is an important phenomenon that can contribute to the deleterious effects of SCI. Aberrant sprouting of primary afferent fibers and synaptogenesis within incorrect dorsal horn laminae leads to the development and maintenance of chronic pain as well as autonomic dysreflexia. At the same time, interruption of connections between supraspinal motor control centers and spinal cord output cells, due to lack of successful regenerative sprouting of injured descending fiber tracts, contributes to motor deficits. Similarities in the molecular control of axonal growth of motor and sensory fibers have made the development of cogent therapies difficult. In this study, we discuss recent findings related to the degradation of inhibitory barriers and promotion of sprouting of motor fibers as a strategy for the restoration of motor function and note that this may induce primary afferent fiber sprouting that can contribute to chronic pain. We highlight the importance of careful attentiveness to off-target molecular- and circuit-level modulation of nociceptive processing while moving forward with the development of therapies that will restore motor function after SCI.
脊髓损伤(SCI)会引发一系列问题,包括慢性疼痛、自主神经反射异常和运动功能障碍。以纤维芽生形式存在的神经可塑性或缺乏神经可塑性是一种重要现象,它可能导致脊髓损伤的有害影响。初级传入纤维的异常芽生以及在错误的背角板层内形成突触,会导致慢性疼痛以及自主神经反射异常的发生和维持。同时,由于受损的下行纤维束未能成功再生芽生,导致脊髓上运动控制中心与脊髓输出细胞之间的连接中断,从而造成运动功能缺陷。运动纤维和感觉纤维轴突生长的分子控制存在相似性,这使得有效治疗方法的开发变得困难。在本研究中,我们讨论了与抑制性屏障降解和促进运动纤维芽生相关的最新发现,这是恢复运动功能的一种策略,并指出这可能会诱导初级传入纤维芽生,进而导致慢性疼痛。我们强调,在推进脊髓损伤后恢复运动功能的治疗方法开发过程中,仔细关注伤害性处理的脱靶分子和回路水平调节非常重要。