DocumentCode :
1426906
Title :
Design and Validation of a Fully Implantable, Chronic, Closed-Loop Neuromodulation Device With Concurrent Sensing and Stimulation
Author :
Stanslaski, Scott ; Afshar, Pedram ; Cong, Peng ; Giftakis, Jon ; Stypulkowski, Paul ; Carlson, Dave ; Linde, Dave ; Ullestad, Dave ; Avestruz, Al-Thaddeus ; Denison, Timothy
Author_Institution :
Medtronic Neuromodulation, Minneapolis, MN, USA
Volume :
20
Issue :
4
fYear :
2012
fDate :
7/1/2012 12:00:00 AM
Firstpage :
410
Lastpage :
421
Abstract :
Chronically implantable, closed-loop neuromodulation devices with concurrent sensing and stimulation hold promise for better understanding the nervous system and improving therapies for neurological disease. Concurrent sensing and stimulation are needed to maximize usable neural data, minimize time delays for closed-loop actuation, and investigate the instantaneous response to stimulation. Current systems lack concurrent sensing and stimulation primarily because of stimulation interference to neural signals of interest. While careful design of high performance amplifiers has proved useful to reduce disturbances in the system, stimulation continues to contaminate neural sensing due to biological effects like tissue-electrode impedance mismatch and constraints on stimulation parameters needed to deliver therapy. In this work we describe systematic methods to mitigate the effect of stimulation through a combination of sensing hardware, stimulation parameter selection, and classification algorithms that counter residual stimulation disturbances. To validate these methods we implemented and tested a completely implantable system for over one year in a large animal model of epilepsy. The system proved capable of measuring and detecting seizure activity in the hippocampus both during and after stimulation. Furthermore, we demonstrate an embedded algorithm that actuates neural modulation in response to seizure detection during stimulation, validating the capability to detect bioelectrical markers in the presence of therapy and titrate it appropriately. The capability to detect neural states in the presence of stimulation and optimally titrate therapy is a key innovation required for generalizing closed-loop neural systems for multiple disease states.
Keywords :
biological tissues; biomedical electrodes; cellular biophysics; closed loop systems; diseases; medical disorders; neurophysiology; patient treatment; bioelectrical markers; biological effects; chronic; chronically implantable devices; closed-loop neural systems; closed-loop neuromodulation device; concurrent sensing; concurrent stimulation; counter residual stimulation disturbances; epilepsy; high performance amplifiers; large animal model; multiple disease states; nervous system; neural data; neural modulation; neural sensing; neural signals; neurological disease; optimally titrate therapy; patient therapy; seizure activity; seizure detection; stimulation parameter selection; stimulation parameters; systematic methods; tissue-electrode impedance mismatch; Classification algorithms; Closed loop systems; Electrical stimulation; Implantable biomedical devices; Medical treatment; Nervous system; Sensors; Chronic; closed-loop; neuromodulation; validation; Action Potentials; Animals; Biofeedback, Psychology; Brain; Deep Brain Stimulation; Electroencephalography; Equipment Design; Equipment Failure Analysis; Feedback; Monitoring, Ambulatory; Prostheses and Implants; Sheep; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1534-4320
Type :
jour
DOI :
10.1109/TNSRE.2012.2183617
Filename :
6135801
Link To Document :
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