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Rees, B.

Publications and source records attributed to Rees, B..

2 recordsLinked to original sources

High-bandwidth, low-profile, long-term wireless EEG telemetry allows for optogenetic entrainment of natural cortical oscillations in freely-moving rats

Recording of whole-brain or multi-unit neuronal activity in the rodent brain is a powerful and widely used technique in neuroscience research. However, the acquisition of data from freely-moving animals is subject to a range of compromises. If a high bandwidth of data digitisation is needed, animals will either need to be tethered to the acquisition system or any telemetry used will have a short working battery life. For freely-moving experiments, especially those requiring careful behavioural measurements, such tethers and/or headstages incorporating e.g. optogenetic stimulation systems may prove to be confounding or limiting in the experiments which may be performed. Here we present the re[fi]nement and deployment of a wirelessly-charged, self-contained EEG telemeter at high data bandwidths (2kHz) with integrated optogenetic stimulator (473nm) and fully subcutaneous [fi]bre routing and implantation. This approach has allowed for rats to be recorded long-term (6 months) without requiring device explants, charging or maintenance, with an outward appearance identical to an unimplanted rodent. We have demonstrated the use of this system to stimulate cortical networks at a range of frequencies in freely-moving and acutely-anaesthetised rats allowing for the boosting or entrainment of physiological oscillations at will.

neuroscience↗

Closed-loop spinal cord stimulation is superior in restoring locomotion in rodent models of Parkinson's Disease

Dorsal column stimulation (DCS) of the spinal cord is emerging as a promising new technology to treat Parkinsons disease (PD). However, optimal stimulation settings that maximize its therapeutic effect on PD symptoms are yet to be determined. Here we demonstrate a closed-loop DCS (CLDCS) paradigm - a substantial advancement from previously tested continuous high-frequency DCS - in a bilateral intrastriatal 6-hydroxydopamine (6-OHDA) rodent model of PD. Firstly, CLDCS, triggered by corticostriatal beta frequency oscillations facilitated a pro-locomotion brain state that restored locomotion and reduced akinesia. Secondly, CLDCS was better at disrupting ongoing beta oscillations and achieved it with lesser overall charge delivery than continuous open-loop stimulation. These results indicate that CLDCS is markedly better than traditional spinal cord stimulation methods and can potentially be highly effective in treating PD symptoms. We envision that the CLDCS approach can be beneficial in the treatment of other neurological disorders which showcase similar pathological neuronal oscillations.

neuroscience↗