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A neurally-interfaced hand prosthesis tuned inter-hemispheric communication
- Source :
- Restorative neurology and neuroscience 30 (2012): 407–418. doi:10.3233/RNN-2012-120224, info:cnr-pdr/source/autori:Di Pino, Giovanni; Porcaro, Camillo; Tombini, Mario; Assenza, Giovanni; Pellegrino, Giovanni; Tecchio, Franca; Rossini, Paolo Maria/titolo:A neurally-interfaced hand prosthesis tuned inter-hemispheric communication/doi:10.3233%2FRNN-2012-120224/rivista:Restorative neurology and neuroscience/anno:2012/pagina_da:407/pagina_a:418/intervallo_pagine:407–418/volume:30
- Publication Year :
- 2012
-
Abstract
- Purpose: This work investigates how a direct bidirectional connection between brain and hand prosthesis modifies the bi-hemispheric sensorimotor system devoted to the movement control of the lost limb. Hand prostheses are often unable to satisfy users' expectations, mostly due to the poor performance of their interfacing system. Neural Interfaces implanted inside nerves of the stump offer the advantage of using the bidirectional neural pathways 'naturally' dispatching signals to control proper hand actions and feed-back sensations. Learning to control a neurally-interfaced hand prosthesis and decode sensory information was previously observed to reduce the inter-hemispheric asymmetry of cortical motor maps and the clinical symptoms of phantom limb syndrome. Methods: Electroencephalographic (EEG) data was analysed using Functional Source Separation (FSS), a semi-blind method that incorporates prior knowledge about the signal of interest into data decomposition to give access to cortical patch activities. Results: Bi-hemispheric cortices showed normalization of their activity (topographical and spectral patterns) and of functional connectivity between homologous hand controlling areas, during the delivery of the motor command to the cybernetic prosthesis. Conclusions: The re-establishment of central-peripheral communication with the lost limb induced by a neurally-interfaced hand prosthesis produces beneficial plastic reorganization, not only restructuring contralateral directly-connected control areas, but also their functional balance within the bi-hemispheric system necessary for motor control.
- Subjects :
- Male
Neural Prostheses
Computer science
medicine.medical_treatment
Movement
Sensory system
Electroencephalography
Prosthesis
Functional Laterality
03 medical and health sciences
Hemoglobins
Young Adult
0302 clinical medicine
Developmental Neuroscience
Amputees
Neural Pathways
medicine
Near-Infrared
neural interface
Humans
Functional source separation
Spectroscopy
030304 developmental biology
Brain–computer interface
0303 health sciences
neurorehabilitation
Principal Component Analysis
Spectroscopy, Near-Infrared
medicine.diagnostic_test
Neural Prosthesis
Motor Cortex
Motor control
hand prosthesis
inter-hemispheric coherence
Recovery of Function
Hand
Brain Waves
Magnetic Resonance Imaging
Settore MED/26 - NEUROLOGIA
medicine.anatomical_structure
Neurology
Interfacing
Oxyhemoglobins
Neurology (clinical)
Neuroscience
030217 neurology & neurosurgery
Motor cortex
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Restorative neurology and neuroscience 30 (2012): 407–418. doi:10.3233/RNN-2012-120224, info:cnr-pdr/source/autori:Di Pino, Giovanni; Porcaro, Camillo; Tombini, Mario; Assenza, Giovanni; Pellegrino, Giovanni; Tecchio, Franca; Rossini, Paolo Maria/titolo:A neurally-interfaced hand prosthesis tuned inter-hemispheric communication/doi:10.3233%2FRNN-2012-120224/rivista:Restorative neurology and neuroscience/anno:2012/pagina_da:407/pagina_a:418/intervallo_pagine:407–418/volume:30
- Accession number :
- edsair.doi.dedup.....3b6a4cd4e572da05d624eaf6bafd5756
- Full Text :
- https://doi.org/10.3233/RNN-2012-120224