Title :
A Hippocampal Cognitive Prosthesis: Multi-Input, Multi-Output Nonlinear Modeling and VLSI Implementation
Author :
Berger, Theodore W. ; Song, Dong ; Chan, Rosa H M ; Marmarelis, Vasilis Z. ; LaCoss, Jeff ; Wills, Jack ; Hampson, Robert E. ; Deadwyler, Sam A. ; Granacki, John J.
Author_Institution :
Dept. of Biomed. Eng., Univ. of Southern California, Los Angeles, CA, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
This paper describes the development of a cognitive prosthesis designed to restore the ability to form new long-term memories typically lost after damage to the hippocampus. The animal model used is delayed nonmatch-to-sample (DNMS) behavior in the rat, and the “core” of the prosthesis is a biomimetic multi-input/multi-output (MIMO) nonlinear model that provides the capability for predicting spatio-temporal spike train output of hippocampus (CA1) based on spatio-temporal spike train inputs recorded presynaptically to CA1 (e.g., CA3). We demonstrate the capability of the MIMO model for highly accurate predictions of CA1 coded memories that can be made on a single-trial basis and in real-time. When hippocampal CA1 function is blocked and long-term memory formation is lost, successful DNMS behavior also is abolished. However, when MIMO model predictions are used to reinstate CA1 memory-related activity by driving spatio-temporal electrical stimulation of hippocampal output to mimic the patterns of activity observed in control conditions, successful DNMS behavior is restored. We also outline the design in very-large-scale integration for a hardware implementation of a 16-input, 16-output MIMO model, along with spike sorting, amplification, and other functions necessary for a total system, when coupled together with electrode arrays to record extracellularly from populations of hippocampal neurons, that can serve as a cognitive prosthesis in behaving animals.
Keywords :
MIMO systems; VLSI; bioelectric potentials; biomedical electrodes; biomimetics; brain; neurophysiology; prosthetics; CA1 coded memories; MIMO model; VLSI implementation; biomimetic multi-input multi-output nonlinear model; electrode array; hippocampal CA1 function; hippocampal cognitive prosthesis; hippocampal neuron; hippocampus damage; long-term memories; nonmatch-to-sample behavior; spatio-temporal electrical stimulation; spatiotemporal spike train output; Brain modeling; Kernel; MIMO; Neurons; Predictive models; Prosthetics; Very large scale integration; Hippocampus; multi-input/multi-output (MIMO) nonlinear model; neural prosthesis; spatio-temporal coding; Algorithms; Amplifiers, Electronic; Analog-Digital Conversion; Animals; CA1 Region, Hippocampal; CA3 Region, Hippocampal; Cognition; Electrodes, Implanted; Electronics; Hippocampus; Memory; Models, Neurological; Neural Prostheses; Nonlinear Dynamics; Prosthesis Design; Rats; Rats, Long-Evans;
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
DOI :
10.1109/TNSRE.2012.2189133