Laboratory for Biomedical Microtechnology, Department of Microsystems Engineering, University of Freiburg, Freiburg, Germany.
BrainLinks-BrainTools, University of Freiburg, Freiburg, Germany.
J Neural Eng. 2022 Feb 8;19(1). doi: 10.1088/1741-2552/ac4bff.
Precise control of bionic limbs relies on robust decoding of motor commands from nerves or muscles signals and sensory feedback from artificial limbs to the nervous system by interfacing the afferent nerve pathways. Implantable devices for bidirectional communication with bionic limbs have been developed in parallel with research on physiological alterations caused by an amputation. In this perspective article, we question whether increasing our effort on bridging these technologies with a deeper understanding of amputation pathophysiology and human motor control may help to overcome pressing stalls in the next generation of bionic limbs.
仿生肢体的精确控制依赖于通过传入神经通路将神经或肌肉信号的运动指令和人工肢体的感觉反馈稳健地解码,并将其反馈给神经系统。与研究截肢引起的生理变化并行,已经开发出用于与仿生肢体进行双向通信的可植入设备。在这篇观点文章中,我们质疑的是,是否通过加深对截肢病理生理学和人类运动控制的理解,加大这些技术的融合力度,可能有助于克服下一代仿生肢体发展的瓶颈。