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Dobrossy, M.

Publications and source records attributed to Dobrossy, M..

2 recordsLinked to original sources

Spatiotemporal characterization of corticolimbic dopamine and noradrenaline signaling and affective state modulation by mfb stimulation

Background: Deep brain stimulation of the medial forebrain bundle (mfb DBS) is a promising intervention for psychiatric disorders, but the neurochemical mechanisms underlying its effects remain incompletely understood. Methods: In adult Sprague Dawley rats, fiber photometry was used to monitor mfb-DBS evoked dopamine (DA) and noradrenaline (NA)-signaling in the nucleus accumbens (NAc) and prefrontal cortex (PFC), following different stimulation patterns, laterality conditions, and prolonged stimulation paradigms. Ultrasonic vocalizations (USVs) were recorded in parallel as a behavioral measure. Results: Bilateral stimulation robustly increased catecholaminergic signals relative to sham in both NAc and PFC. The magnitude and temporal profile of these responses depended more on stimulation pattern rather than on laterality, with long pulse-width generally evoking the largest responses and laterality producing no significant differences across the four recording groups. During 10 min bilateral stimulation, catecholaminergic signals increased rapidly and remained elevated throughout stimulation, with the clearest sustained effect observed in NAc DA. mfb DBS also increased USV calls and peak frequencies, whereas these behavioral changes showed no consistent region-specific correlation with catecholaminergic signal magnitude. Conclusions: mfb DBS recruits catecholaminergic signaling in a parameter-dependent and region specific manner and increases positive-affective USV output. These findings identify temporal patterning as an important determinant of downstream circuit engagement, whereas the relationship between acute USV responses and regional catecholamine signaling appears more complex.

neuroscience↗

An electronically steerable epidural ultrasound interface for deep brain neuromodulation in freely moving rats

Low-intensity focused ultrasound (LI-FUS) clinical trials exploit either the neural activity modulating, or the blood-brain barrier opening, capacity of this stimulation modality. However, LI-FUS currently is applied only transcranially which means that it is conducive only for episodic and intermittent stimulation, although, clinical data shows that in numerous neurological and psychiatric applications, chronic and continuous stimulation is required for long-term, stable therapeutic effect. The paper presents experimental data on a novel and innovative approach describing an implantable, epidural focus ultrasound (eFUS) device, designed for continuous, chronic and multi-site steerable neuromodulation. The miniaturized eFUS device consists of a two-dimensional piezoelectric transducer array directly integrated onto a custom ASIC, specifically engineered for proof-of-principle neuromodulation studies in the rat brain. The system generates electronically steerable focused ultrasound with software-defined focal coordinates, sufficient to stimulate neuronal activity in deep brain structures. In vitro acoustic characterization confirmed accurate beam steering and focusing, while in vivo validation demonstrated reliable stimulation of a deep subcortical target with measurable physiological effects. eFUS-mediated targeting of the ventral tegmental area in awake and freely moving rats produced increase in dopamine release in the nucleus accumbens as confirmed using fiber photometry recordings. Post-mortem histological analysis of the target regions showed the absence of inflammatory markers, although the epidural placement of the eFUS device was associated with mild tissue damage. Overall, the study provides in vitro data demonstrating the energy efficiency, and steerability of the technology, and in vivo physiological evidence of neuromodulatory ability of a deep, subcortical brain structure.

neuroscience↗