Recovering motor activation with chronic peripheral nerve computer interface

dc.contributor.authorE Eggers, Thomas
dc.contributor.authorM Durand, Dominique
dc.contributor.authorA McCallum, Grant
dc.contributor.authorM Dweiri, Yazan
dc.date.accessioned2025-12-04T09:33:48Z
dc.date.available2025-12-04T09:33:48Z
dc.date.issued2018
dc.descriptionAdvances in neural engineering allow for chronic interfacing with the peripheral nervous system. Selective stimulation of residual nerves in amputees has been shown to restore natural and functional sensation of the phantom limb1. An unmet clinical need for amputee patients is the ability to recover motor activation from the nervous system, which would allow for robust and functional restoration of the lost limb.
dc.description.abstractInterfaces with the peripheral nerve provide the ability to extract motor activation and restore sensation to amputee patients. The ability to chronically extract motor activations from the peripheral nervous system remains an unsolved problem. In this study, chronic recordings with the Flat Interface Nerve Electrode (FINE) are employed to recover the activation levels of innervated muscles. The FINEs were implanted on the sciatic nerves of canines, and neural recordings were obtained as the animal walked on a treadmill. During these trials, electromyograms (EMG) from the surrounding hamstring muscles were simultaneously recorded and the neural recordings are shown to be free of interference or crosstalk from these muscles. Using a novel Bayesian algorithm, the signals from individual fascicles were recovered and then compared to the corresponding target EMG of the lower limb. High correlation coefficients (0.84 ± 0.07 and 0.61 ± 0.12) between the extracted tibial fascicle/medial gastrocnemius and peroneal fascicle/tibialis anterior muscle were obtained. Analysis calculating the information transfer rate (ITR) from the muscle to the motor predictions yielded approximately 5 and 1 bit per second (bps) for the two sources. This method can predict motor signals from neural recordings and could be used to drive a prosthesis by interfacing with residual nerves. Keywords: Flat Interface Nerve Electrode (FINEs), Information Transfer Rate (ITR), Neural Recording, Residual Nerve, Recovered Signal
dc.identifier.citationEggers, T. E., Dweiri, Y. M., McCallum, G. A., & Durand, D. M. (2018). Recovering motor activation with chronic peripheral nerve computer interface. Scientific Reports, 8(1), 14149.
dc.identifier.doihttps://doi.org/10.1038/s41598-018-32357-7
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/7823
dc.language.isoen
dc.publisherNature Publishing Group UK
dc.titleRecovering motor activation with chronic peripheral nerve computer interface
dc.typeArticle

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