Coherence resonance in bursting neural networks

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초록

Synchronized neural bursts are one of the most noticeable dynamic features of neural networks, being essential for various phenomena in neuroscience, yet their complex dynamics are not well understood. With extrinsic electrical and optical manipulations on cultured neural networks, we demonstrate that the regularity (or randomness) of burst sequences is in many cases determined by a (few) low-dimensional attractor(s) working under strong neural noise. Moreover, there is an optimal level of noise strength at which the regularity of the interburst interval sequence becomes maximal-a phenomenon of coherence resonance. The experimental observations are successfully reproduced through computer simulations on a well-established neural network model, suggesting that the same phenomena may occur in many in vivo as well as in vitro neural networks.

키워드

NOISEOSCILLATIONSNEURONSDYNAMICSPATTERNSCHAOS
제목
Coherence resonance in bursting neural networks
저자
Kim, June HoanLee, Ho JunMin, Cheol HongLee, Kyoung J.
DOI
10.1103/PhysRevE.92.042701
발행일
2015-10-01
유형
Article
저널명
Physical Review E - Statistical, Nonlinear, and Soft Matter Physics
92
4