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Restoring Natural Sensory Feedback in Real-Time Bidirectional Hand Prostheses

Science Translational Medicine · 2014 · Vol. 6(222) · pp. 222ra19–222ra19
Staniša RaspopovićMarco CapogrossoFrancesco M. PetriniMarco BonizzatoJacopo RigosaGiovanni Di PinoJacopo CarpanetoMarco ControzziTim BoretiusEduardo FernándezGiuseppe GranataCalogero Maria OddoLuca CitiAnna Lisa CiancioChristian CiprianiMaria Chiara CarrozzaWinnie JensenEugenio GuglielmelliThomas StieglitzPaolo Maria RossiniSilvestro Micera

Abstract

Hand loss is a highly disabling event that markedly affects the quality of life. To achieve a close to natural replacement for the lost hand, the user should be provided with the rich sensations that we naturally perceive when grasping or manipulating an object. Ideal bidirectional hand prostheses should involve both a reliable decoding of the user's intentions and the delivery of nearly "natural" sensory feedback through remnant afferent pathways, simultaneously and in real time. However, current hand prostheses fail to achieve these requirements, particularly because they lack any sensory feedback. We show that by stimulating the median and ulnar nerve fascicles using transversal multichannel intrafascicular electrodes, according to the information provided by the artificial sensors from a hand prosthesis, physiologically appropriate (near-natural) sensory information can be provided to an amputee during the real-time decoding of different grasping tasks to control a dexterous hand prosthesis. This feedback enabled the participant to effectively modulate the grasping force of the prosthesis with no visual or auditory feedback. Three different force levels were distinguished and consistently used by the subject. The results also demonstrate that a high complexity of perception can be obtained, allowing the subject to identify the stiffness and shape of three different objects by exploiting different characteristics of the elicited sensations. This approach could improve the efficacy and "life-like" quality of hand prostheses, resulting in a keystone strategy for the near-natural replacement of missing hands.

Muscle activation and electromyography studiesMotor Control and AdaptationEEG and Brain-Computer InterfacesSensory systemNatural (archaeology)Physical medicine and rehabilitationMedicineComputer scienceNeuroscienceBiology

MeSH terms

AdultArtificial LimbsComputer SystemsElectric StimulationHandHumansMalePeripheral NervesHand StrengthFeedback, Sensory
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References
Coding and use of tactile signals from the fingertips in object manipulation tasks
Nature reviews. Neuroscience · 2009 · 1,985 citations
A robust, real-time control scheme for multifunction myoelectric control
IEEE Transactions on Biomedical Engineering · 2003 · 1,718 citations
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