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Updated: Mar 30, 2026

Optogenetic Entrainment of Hippocampal Theta Oscillations in Behaving Mice
Published on: June 29, 2018
Causal evidence that intrinsic beta-frequency is relevant for enhanced signal propagation in the motor system as
Vincenzo Romei1, Markus Bauer2, Joseph L Brooks3
1Wellcome Trust Centre for Neuroimaging at UCL, Institute of Neurology, University College London, London, UK; UCL Institute of Cognitive Neuroscience, University College London, London, UK; Department of Psychology, Centre for Brain Science, University of Essex, Colchester, UK.
Abstract:
Correlative evidence provides support for the idea that brain oscillations underpin neural computations. Recent work using rhythmic stimulation techniques in humans provide causal evidence but the interactions of these external signals with intrinsic rhythmicity remain unclear. Here, we show that sensorimotor cortex follows externally applied rhythmic TMS (rTMS) stimulation in the beta-band but that the elicited responses are strongest at the intrinsic individual beta peak frequency. While these entrainment effects are of short duration, even subthreshold rTMS pulses propagate through the network and elicit significant cortico-spinal coupling, particularly when stimulated at the individual beta-frequency. Our results show that externally enforced rhythmicity interacts with intrinsic brain rhythms such that the individual peak frequency determines the effect of rTMS. The observed downstream spinal effect at the resonance frequency provides evidence for the causal role of brain rhythms for signal propagation.
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