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Brain network oscillations occur within distinct frequency bands that correlate to behavioral states. In rodents, hippocampal θ oscillations (5 - 10 Hz) are observed during exploratory behaviors1,2, while γ oscillations (20 - 80 Hz) associate with various cognitive processes, including perception and attention3,4. Synchronous γ network activity is also implicated in the pathology of disorders such as epilepsy and schizophrenia5,6. For example, γ oscillations are thought to correspond to areas of cortical epileptic foci5,7,8 and could be used as markers of pharmacosensitivity or resistance, two important areas of investigation in epilepsy research9.
The hippocampal brain slice is a model that has been widely used to investigate network activity10-12. Various protocols have been developed to generate γ oscillations in brain slices that typically involve pharmacological modulation such as low Mg2+, 4-aminopyridine (4AP), bicuculline, and kainic acid12-17. Shortcomings of pharmacologically triggered oscillations are that they occur randomly after drug application and are not reliably generated or stable over time. Electrically triggered γ oscillations overcome many of these problems and also have the advantage of being temporally locked to the stimulating event allowing for episodic recording and analysis. Here a protocol is described for generating CA1 γ oscillations by delivering a tetanic stimulation to the stratum oriens in the hippocampal slice.