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Eladly, A.

Publications and source records attributed to Eladly, A..

2 recordsLinked to original sources

Graphene Micro-transistor Arrays Reveal Perfusion-Dependent Electrophysiological and Haemodynamic Signatures of Cortical Spreading Depolarizations in Ischaemic Stroke

Cortical spreading depolarizations (CSDs) are large-scale disruptions of neuronal homeostasis that contribute to secondary injury in ischaemic stroke. In healthy cortex, CSDs induce vasodilation to meet metabolic demand, whereas in ischaemic tissue, they can provoke vasoconstriction and sustained hypoperfusion, exacerbating damage. We present a multimodal neurotechnology platform integrating flexible, transparent graphene solution-gated field-effect transistor (gSGFET) arrays with laser speckle contrast imaging (LSCI), enabling simultaneous DC-coupled electrophysiological recordings and cerebral blood flow imaging with high spatiotemporal fidelity. gSGFETs enable stable, distortion-free recording of infraslow potentials essential for resolving CSD waveforms in vivo. In two murine stroke models, we show that CSD waveform duration and morphology scale with local perfusion, delineating electrophysiological subtypes predictive of tissue viability and haemodynamic response. In metabolically compromised cortex, CSDs exhibit double peaks or negative ultraslow components that result in vasoconstriction, contrasting with narrow, monophasic waveforms eliciting vasodilation in healthy regions. Systemic ketamine shortens CSD duration and converts vasoconstriction to vasodilation in perfusion-deficit tissue, revealing a mechanism for its neuroprotective action. This platform enables high-fidelity investigation of brain-blood flow interactions in vivo.

neuroscience↗

Flexible graphene-based neurotechnology for high-precision deep brain mapping and neuromodulation in Parkinsonian rats

Deep brain stimulation (DBS) is a neuroelectronic therapy for the treatment of a broad range of neurological disorders, including Parkinsons disease. Current DBS technologies face important limitations that impact their efficacy, such as large electrode size, invasiveness, and lack of adaptive therapy based on biomarker monitoring. The use of novel electrode materials is expected to contribute to overcome these limitations. In a previous study, we reported that nanoporous reduced graphene oxide (rGO) is a promising electrode material due to its high charge injection capacity and low impedance. Here, we investigate the potential benefits of using the rGO technology in DBS. To this end, we implant a flexible high-density array of rGO microelectrodes in the subthalamic nucleus (STN) of healthy and hemi-parkinsonian rats to investigate specific electrophysiological Parkinsonian biomarkers and to assess the effect of microscale stimulation. We demonstrate that these microelectrodes record action potentials with high signal-to-noise ratios (SNR > 6), allowing the precise localization of deep brain structures like the STN, and the tracking of multiunit-based biomarkers such as STN bursts. The bidirectional capability to deliver high-density focal stimulation and to record high-fidelity signals unlocks the visualization of the local neuromodulation of the multiunit biomarker. These findings demonstrate the potential of bidirectional high-resolution neural interfaces to investigate the mechanisms around DBS in preclinical models and suggest new avenues for the use of adaptive closed-loop operation based on electrophysiological biomarkers monitoring.

bioengineering↗