Giszter Simon F
Neurobiology and Anatomy, Drexel University College of Medicine, Philadelphia, Pennsylvania 19129, USA.
Neurotherapeutics. 2008 Jan;5(1):147-62. doi: 10.1016/j.nurt.2007.10.062.
A range of passive and active devices are under development or are already in clinical use to partially restore function after spinal cord injury (SCI). Prosthetic devices to promote host tissue regeneration and plasticity and reconnection are under development, comprising bioengineered bridging materials free of cells. Alternatively, artificial electrical stimulation and robotic bridges may be used, which is our focus here. A range of neuroprostheses interfacing either with CNS or peripheral nervous system both above and below the lesion are under investigation and are at different stages of development or translation to the clinic. In addition, there are orthotic and robotic devices which are being developed and tested in the laboratory and clinic that can provide mechanical assistance, training or substitution after SCI. The range of different approaches used draw on many different aspects of our current but limited understanding of neural regeneration and plasticity, and spinal cord function and interactions with the cortex. The best therapeutic practice will ultimately likely depend on combinations of these approaches and technologies and on balancing the combined effects of these on the biological mechanisms and their interactions after injury. An increased understanding of plasticity of brain and spinal cord, and of the behavior of innate modular mechanisms in intact and injured systems, will likely assist in future developments. We review the range of device designs under development and in use, the basic understanding of spinal cord organization and plasticity, the problems and design issues in device interactions with the nervous system, and the possible benefits of active motor devices.
一系列被动和主动装置正在研发中或已在临床使用,以在脊髓损伤(SCI)后部分恢复功能。促进宿主组织再生、可塑性和重新连接的假体装置正在研发中,包括无细胞的生物工程桥接材料。另外,也可以使用人工电刺激和机器人桥接,这也是我们在此关注的重点。一系列与损伤部位上方和下方的中枢神经系统或周围神经系统相连接的神经假体正在研究中,处于不同的研发阶段或向临床转化的阶段。此外,还有正在实验室和临床中研发和测试的矫形和机器人装置,它们可以在脊髓损伤后提供机械辅助、训练或替代。所采用的不同方法涉及我们目前对神经再生和可塑性、脊髓功能以及与皮层相互作用的有限理解的许多不同方面。最佳治疗实践最终可能取决于这些方法和技术的组合,以及平衡它们对损伤后生物学机制及其相互作用的综合影响。对脑和脊髓可塑性以及完整和受损系统中固有模块化机制行为的更多理解,可能会有助于未来的发展。我们综述了正在研发和使用的装置设计范围、对脊髓组织和可塑性的基本理解、装置与神经系统相互作用中的问题和设计问题,以及主动运动装置的潜在益处。