物理医学与康复
脊髓
脊髓损伤
神经假体
医学
四肢瘫痪
神经康复
康复
功能性电刺激
神经科学
物理疗法
心理学
刺激
作者
Henri Lorach,Andrea Gálvez,Valeria Spagnolo,Félix Martel,Serpil Karakas,Nadine Intering,Molywan Vat,Olivier Faivre,Cathal Harte,Salif Komi,Jimmy Ravier,Thibault Collin,Laure Coquoz,Icare Sakr,Edeny Baaklini,Sergio Daniel Hernandez-Charpak,Grégory Dumont,Rik Buschman,Nicholas Buse,Timothy Denison
出处
期刊:Nature
[Nature Portfolio]
日期:2023-05-24
卷期号:618 (7963): 126-133
被引量:269
标识
DOI:10.1038/s41586-023-06094-5
摘要
A spinal cord injury interrupts the communication between the brain and the region of the spinal cord that produces walking, leading to paralysis1,2. Here, we restored this communication with a digital bridge between the brain and spinal cord that enabled an individual with chronic tetraplegia to stand and walk naturally in community settings. This brain-spine interface (BSI) consists of fully implanted recording and stimulation systems that establish a direct link between cortical signals3 and the analogue modulation of epidural electrical stimulation targeting the spinal cord regions involved in the production of walking4-6. A highly reliable BSI is calibrated within a few minutes. This reliability has remained stable over one year, including during independent use at home. The participant reports that the BSI enables natural control over the movements of his legs to stand, walk, climb stairs and even traverse complex terrains. Moreover, neurorehabilitation supported by the BSI improved neurological recovery. The participant regained the ability to walk with crutches overground even when the BSI was switched off. This digital bridge establishes a framework to restore natural control of movement after paralysis.
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