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用于在截瘫患者中进行肌外膜和神经刺激的原始电子设计。

Original electronic design to perform epimysial and neural stimulation in paraplegia.

作者信息

Guiraud David, Stieglitz Thomas, Taroni Gérard, Divoux Jean-Louis

机构信息

INRIA-DEMAR Project, LIRMM, 161 Rue Ada, F-34392 Montpellier Cedex 5, France.

出版信息

J Neural Eng. 2006 Dec;3(4):276-86. doi: 10.1088/1741-2560/3/4/004. Epub 2006 Sep 7.

Abstract

This paper presents an original electronic architecture to manage epimysial and neural stimulation using the same implantable device. All the muscles needed to achieve lower limb movements such as standing and walking can thus be activated. Mainly for surgical reasons, some muscles need to be stimulated through different inputs: epimysium or motor nerve. We developed an electronic solution, including the design of an application-specific integrated circuit, to meet the requirements of both types of stimulation. Five years after the successful implantation of the system, we were able to evaluate the system's performance. The patient is still using the system at home and no failure occurred during this 5-year period. We conclude that the electronic design not only provides a unique investigative tool for research, but that it can also be used to restore the motor function of the lower limb. This technology has an advantage over external stimulation because the patient can safely use the system at home. However, improvements such as lower power consumption, and thus greater autonomy, are needed. We further conclude that the modelling of the electrical behaviour of the electrodes is reliable and the estimated parameter values are homogeneous and consistent for the same type of electrode. Thus, the three parameters of the first-order model can be identified from an acute animal experiment and provide a means to optimize the design of the output stage of implanted stimulators.

摘要

本文提出了一种原创的电子架构,用于使用同一可植入设备管理肌外膜和神经刺激。这样就可以激活实现诸如站立和行走等下肢运动所需的所有肌肉。主要出于手术原因,一些肌肉需要通过不同的输入进行刺激:肌外膜或运动神经。我们开发了一种电子解决方案,包括专用集成电路的设计,以满足两种刺激类型的要求。该系统成功植入五年后,我们能够评估其性能。患者仍在家中使用该系统,在此五年期间未发生故障。我们得出结论,该电子设计不仅为研究提供了一种独特的研究工具,而且还可用于恢复下肢的运动功能。这项技术相对于外部刺激具有优势,因为患者可以在家中安全地使用该系统。然而,需要进行诸如降低功耗从而提高自主性等改进。我们进一步得出结论,电极电行为的建模是可靠的,并且对于同一类型的电极,估计的参数值是均匀且一致的。因此,可以从急性动物实验中识别出一阶模型的三个参数,并为优化植入式刺激器输出阶段的设计提供一种方法。

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