Title :
An engineered tactile afferent modulation platform to elicit compound sensory nerve action potentials in response to force magnitude
Author :
Kim, Eun Kyu ; Sugg, K.B. ; Langhals, Nicholas B. ; Lightbody, S.M. ; Baltrusaitis, M.E. ; Urbanchek, Melanie G. ; Cedema, P.S. ; Gerling, Gregory J.
Author_Institution :
Dept. of Syst. & Inf. Eng., Univ. of Virginia, Charlottesville, VA, USA
Abstract :
In the near future, upper limb prostheses may interface with peripheral nerves of amputees to help restore vital somatosensory feedback. Achieving that goal requires the transformation of forces artificially sensed in our environment into the depolarization of afferents, by delivering levels of charge adequate for signaling tactile sensory cues yet avoiding tissue damage. The objective of the work herein was to build and test a tactile afferent modulation platform engineered to transform force data input, from an artificial sensor under ramp-and-hold stimuli, into the output of discrete charge-balanced pulses to the rat´s acute sural nerve thereby eliciting compound sensory neural action potentials (CSNAPs). In vivo experiments, to stimulate both tactile end organs mechanically and sural nerves electrically, helped fit the model´s empirical parameters. Input-output relationships were validated by comparing CSNAPs elicited by the tactile afferent modulation platform with those of natural end organs. The results replicated the natural response where increased force magnitude increased both CSNAP firing rates and waveform amplitudes. Next steps will involve the integration of the engineered platform with a regenerative peripheral nerve interface for the evaluation of its long-term reliability.
Keywords :
artificial limbs; bioelectric potentials; biological tissues; force sensors; neurophysiology; somatosensory phenomena; tissue engineering; touch (physiological); CSNAP firing rates; afferent depolarization; amputees; artificial sensor; compound sensory nerve action potentials; compound sensory neural action potentials; discrete charge-balanced pulses; engineered platform; engineered tactile afferent modulation platform; force data input; force transformation; increased force magnitude; input-output relationships; long-term reliability; natural end organs; peripheral nerves; ramp-and-hold stimuli; rat acute sural nerve; regenerative peripheral nerve interface; tactile sensory cues signaling; tissue damage; upper limb prostheses; vital somatosensory feedback; waveform amplitudes; Electric potential; Electrodes; Firing; Force; Force sensors; Modulation; Skin; Compound Action Potential; Neural Model; Prosthetics; Regenerative Peripheral Nerve Interface; Sensory; Tactile;
Conference_Titel :
World Haptics Conference (WHC), 2013
Conference_Location :
Daejeon
Print_ISBN :
978-1-4799-0087-9
DOI :
10.1109/WHC.2013.6548415