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Neural Prostheses in Clinical Applications―Trends from Precision Mechanics towards Biomedical Microsystems in Neurological Rehabilitation

机译:神经假体在临床应用中的发展-从精密力学到生物医学微系统在神经康复中的发展趋势

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摘要

Neural prostheses partially restore body functions by technical nerve excitation after trauma or neurological diseases. External devices and implants have been developed since the early 1960s for many applications. Several systems have reached nowadays clinical practice: Cochlea implants help the deaf to hear, micturition is induced by bladder stimulators in paralyzed persons and deep brain stimulation helps patients with Parkinson's disease to participate in daily life again. So far, clinical neural prostheses are fabricated with means of precision mechanics. Since microsystem technology opens the opportunity to design and develop complex systems with a high number of electrodes to interface with the nervous systems, the opportunity for selective stimulation and complex implant scenarios seems to be feasible in the near future. The potentials and limitations with regard to biomedical microdevices are introduced and discussed in this paper. Target specifications are derived from existing implants and are discussed on selected applications that has been investigated in experimental research: a micromachined implant to interface a nerve stump with a sieve electrode, cuff electrodes with integrated electronics, and an epiretinal vision prosthesis.
机译:神经假体在创伤或神经系统疾病后通过技术性神经兴奋来部分恢复身体功能。自1960年代初以来,已针对许多应用开发了外部设备和植入物。如今,已经有几种系统可用于临床:耳蜗植入物可帮助聋人听力,排尿是由瘫痪者的膀胱刺激器引起的,深部脑刺激可帮助帕金森氏病患者重新参与日常生活。到目前为止,临床神经假体是通过精密力学来制造的。由于微系统技术为设计和开发带有大量与神经系统连接的电极的复杂系统提供了机会,因此在不久的将来进行选择性刺激和复杂植入方案的机会似乎是可行的。本文介绍并讨论了有关生物医学微型设备的潜力和局限性。目标规格来自现有的植入物,并在实验研究中已针对选定的应用进行了讨论:微加工植入物,用于将神经残端与筛电极对接,具有集成电子元件的袖带电极以及视网膜前视假体。

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