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Enhancing functional abilities and cognitive integration of the lower limb prosthesis

假肢 认知 物理医学与康复 功能集成 心理学 认知心理学 神经科学 医学 数学 数学分析 积分方程
作者
Francesco M. Petrini,Giacomo Valle,Marko Bumbaširević,Federica Barberi,Dario Bortolotti,Paul Čvančara,Arthur Hiairrassary,Pavle Mijović,Atli Örn Sverrisson,Alessandra Pedrocchi,Jean‐Louis Divoux,Igor Popović,Knut Lechler,Bogdan Mijović,David Guiraud,Thomas Stieglitz,Ásgeir Alexandersson,Silvestro Micera,Aleksandar Lešić,Staniša Raspopović
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:11 (512) 被引量:258
标识
DOI:10.1126/scitranslmed.aav8939
摘要

Lower limb amputation (LLA) destroys the sensory communication between the brain and the external world during standing and walking. Current prostheses do not restore sensory feedback to amputees, who, relying on very limited haptic information from the stump-socket interaction, are forced to deal with serious issues: the risk of falls, decreased mobility, prosthesis being perceived as an external object (low embodiment), and increased cognitive burden. Poor mobility is one of the causes of eventual device abandonment. Restoring sensory feedback from the missing leg of above-knee (transfemoral) amputees and integrating the sensory feedback into the sensorimotor loop would markedly improve the life of patients. In this study, we developed a leg neuroprosthesis, which provided real-time tactile and emulated proprioceptive feedback to three transfemoral amputees through nerve stimulation. The feedback was exploited in active tasks, which proved that our approach promoted improved mobility, fall prevention, and agility. We also showed increased embodiment of the lower limb prosthesis (LLP), through phantom leg displacement perception and questionnaires, and ease of the cognitive effort during a dual-task paradigm, through electroencephalographic recordings. Our results demonstrate that induced sensory feedback can be integrated at supraspinal levels to restore functional abilities of the missing leg. This work paves the way for further investigations about how the brain interprets different artificial feedback strategies and for the development of fully implantable sensory-enhanced leg neuroprostheses, which could drastically ameliorate life quality in people with disability.
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