Restoring cortical control of functional movement in a human with quadriplegia

被引:576
作者
Bouton, Chad E. [1 ,8 ]
Shaikhouni, Ammar [2 ,3 ]
Annetta, Nicholas V. [1 ]
Bockbrader, Marcia A. [2 ,4 ]
Friedenberg, David A. [5 ]
Nielson, Dylan M. [2 ,3 ]
Sharma, Gaurav [1 ]
Sederberg, Per B. [2 ,6 ]
Glenn, Bradley C. [7 ]
Mysiw, W. Jerry [2 ,4 ]
Morgan, Austin G. [1 ]
Deogaonkar, Milind [2 ,3 ]
Rezai, Ali R. [2 ,3 ]
机构
[1] Battelle Mem Inst, Med Devices & Neuromodulat, 505 King Ave, Columbus, OH 43201 USA
[2] Ohio State Univ, Ctr Neuromodulat, Columbus, OH 43210 USA
[3] Ohio State Univ, Dept Neurol Surg, Columbus, OH 43210 USA
[4] Ohio State Univ, Dept Phys Med & Rehabil, Columbus, OH 43210 USA
[5] Battelle Mem Inst, Adv Analyt & Hlth Res, 505 King Ave, Columbus, OH 43201 USA
[6] Ohio State Univ, Dept Psychol, Columbus, OH 43210 USA
[7] Battelle Mem Inst, Energy Syst, 505 King Ave, Columbus, OH 43201 USA
[8] Feinstein Inst Med Res, 350 Community Dr, Manhasset, NY 11030 USA
关键词
MOTOR CORTEX; TETRAPLEGIA; GRASP; HAND; ARM; RESTORATION; NEURONS; NEUROPROSTHESIS; STIMULATION; PERFORMANCE;
D O I
10.1038/nature17435
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Millions of people worldwide suffer from diseases that lead to paralysis through disruption of signal pathways between the brain and the muscles. Neuroprosthetic devices are designed to restore lost function and could be used to form an electronic 'neural bypass' to circumvent disconnected pathways in the nervous system. It has previously been shown that intracortically recorded signals can be decoded to extract information related to motion, allowing non-human primates and paralysed humans to control computers and robotic arms through imagined movements(1-11). In non-human primates, these types of signal have also been used to drive activation of chemically paralysed arm muscles(12,13). Here we show that intracortically recorded signals can be linked in real-time to muscle activation to restore movement in a paralysed human. We used a chronically implanted intracortical microelectrode array to record multiunit activity from the motor cortex in a study participant with quadriplegia from cervical spinal cord injury. We applied machine-learning algorithms to decode the neuronal activity and control activation of the participant's forearm muscles through a custom-built high-resolution neuromuscular electrical stimulation system. The system provided isolated finger movements and the participant achieved continuous cortical control of six different wrist and hand motions. Furthermore, he was able to use the system to complete functional tasks relevant to daily living. Clinical assessment showed that, when using the system, his motor impairment improved from the fifth to the sixth cervical (C5-C6) to the seventh cervical to first thoracic (C7-T1) level unilaterally, conferring on him the critical abilities to grasp, manipulate, and release objects. This is the first demonstration to our knowledge of successful control of muscle activation using intracortically recorded signals in a paralysed human. These results have significant implications in advancing neuroprosthetic technology for people worldwide living with the effects of paralysis.
引用
收藏
页码:247 / +
页数:13
相关论文
共 30 条
  • [21] A high-performance brain-computer interface
    Santhanam, Gopal
    Ryu, Stephen I.
    Yu, Byron M.
    Afshar, Afsheen
    Shenoy, Krishna V.
    [J]. NATURE, 2006, 442 (7099) : 195 - 198
  • [22] Comparing support vector machines with Gaussian kernels to radial basis function classifiers
    Scholkopf, B
    Sung, KK
    Burges, CJC
    Girosi, F
    Niyogi, P
    Poggio, T
    Vapnik, V
    [J]. IEEE TRANSACTIONS ON SIGNAL PROCESSING, 1997, 45 (11) : 2758 - 2765
  • [23] Instant neural control of a movement signal
    Serruya, MD
    Hatsopoulos, NG
    Paninski, L
    Fellows, MR
    Donoghue, JP
    [J]. NATURE, 2002, 416 (6877) : 141 - 142
  • [24] Somatosensory responses in a human motor cortex
    Shaikhouni, Ammar
    Donoghue, John P.
    Hochberg, Leigh R.
    [J]. JOURNAL OF NEUROPHYSIOLOGY, 2013, 109 (08) : 2192 - 2204
  • [25] Sharma G., 2015, Bioelectronic Medicine, V2, P63, DOI [10.15424/bioelectronmed.2015.00010, DOI 10.15424/BIOELECTRONMED.2015.00010]
  • [26] Advances in functional and structural MR image analysis and implementation as FSL
    Smith, SM
    Jenkinson, M
    Woolrich, MW
    Beckmann, CF
    Behrens, TEJ
    Johansen-Berg, H
    Bannister, PR
    De Luca, M
    Drobnjak, I
    Flitney, DE
    Niazy, RK
    Saunders, J
    Vickers, J
    Zhang, YY
    De Stefano, N
    Brady, JM
    Matthews, PM
    [J]. NEUROIMAGE, 2004, 23 : S208 - S219
  • [27] Direct cortical control of 3D neuroprosthetic devices
    Taylor, DM
    Tillery, SIH
    Schwartz, AB
    [J]. SCIENCE, 2002, 296 (5574) : 1829 - 1832
  • [28] Cortical control of a prosthetic arm for self-feeding
    Velliste, Meel
    Perel, Sagi
    Spalding, M. Chance
    Whitford, Andrew S.
    Schwartz, Andrew B.
    [J]. NATURE, 2008, 453 (7198) : 1098 - 1101
  • [29] Real-time prediction of hand trajectory by ensembles of cortical neurons in primates
    Wessberg, J
    Stambaugh, CR
    Kralik, JD
    Beck, PD
    Laubach, M
    Chapin, JK
    Kim, J
    Biggs, J
    Srinivasan, MA
    Nicolelis, MAL
    [J]. NATURE, 2000, 408 (6810) : 361 - 365
  • [30] Localization of the motor hand area to a knob on the precentral gyrus - A new landmark
    Yousry, TA
    Schmid, UD
    Alkadhi, H
    Schmidt, D
    Peraud, A
    Buettner, A
    Winkler, P
    [J]. BRAIN, 1997, 120 : 141 - 157