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Original Research ARTICLE

Period concatenation underlies interactions between gamma and beta rhythms in neocortex

1
Institute of Neuroscience, Newcastle University, Newcastle, UK
2
Department of Mathematics, Boston University, Boston, MA, USA
3
School of Computing Science, Newcastle University, Newcastle, UK
4
Psychiatry CEDD, GlaxoSmithkline plc, Harlow, Essex, UK
5
Department of Physiology and Pharmacology, SUNY Health Sciences Center, Brooklyn, NY, USA
The neocortex generates rhythmic electrical activity over a frequency range covering many decades. Specific cognitive and motor states are associated with oscillations in discrete frequency bands within this range, but it is not known whether interactions and transitions between distinct frequencies are of functional importance. When coexpressed rhythms have frequencies that differ by a factor of two or more interactions can be seen in terms of phase synchronization. Larger frequency differences can result in interactions in the form of nesting of faster frequencies within slower ones by a process of amplitude modulation. It is not known how coexpressed rhythms, whose frequencies differ by less than a factor of two may interact. Here we show that two frequencies (gamma – 40 Hz and beta2 – 25 Hz), coexpressed in superficial and deep cortical laminae with low temporal interaction, can combine to generate a third frequency (beta1 – 15 Hz) showing strong temporal interaction. The process occurs via period concatenation, with basic rhythm-generating microcircuits underlying gamma and beta2 rhythms forming the building blocks of the beta1 rhythm by a process of addition. The mean ratio of adjacent frequency components was a constant – approximately the golden mean – which served to both minimize temporal interactions, and permit multiple transitions, between frequencies. The resulting temporal landscape may provide a framework for multiplexing – parallel information processing on multiple temporal scales.
Keywords:
EEG, neocortex, gamma rhythm, beta rhythm, inhibition
Citation:
Roopun AK, Kramer MA, Carracedo LM, Kaiser M, Davies CH, Traub RD, Kopell NJ and Whittington MA (2008). Period concatenation underlies interactions between gamma and beta rhythms in neocortex. Front. Cell. Neurosci.. 2:1. doi: 10.3389/neuro.03.001.2008
Received:
21 January 2008;
 Paper pending published:
18 February 2008;
Accepted:
27 March 2008;
 Published online:
08 April 2008.

Edited by:

Charles J. Wilson, University of Texas at San Antonio, USA

Reviewed by:

Igor Timofeev, Laval University, Canada
Alain Destexhe, UNIC-CNRS, France
Copyright:
© 2008 Roopun, Kramer, Carracedo, Kaiser, Davies, Traub, Kopell and Whittington. This is an open-access article subject to an exclusive license agreement between the authors and the Frontiers Research Foundation, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are credited.
*Correspondence:
– Experimental: Miles A. Whittington, Institute of Neuroscience, The Medical School, Newcastle University, Framlington Place, Newcastle NE2 4HH, UK. e-mail: m.a.whittington@ncl.ac.uk
Computational: Nancy J. Kopell, Department of Mathematics, Boston University, 111 Cummington St. Boston 02215, USA. e-mail: nk@math.bu.edu

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