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Unal, G.

Publications and source records attributed to Unal, G..

2 recordsLinked to original sources

Differential Role of GABAergic and Cholinergic Ventral Pallidal Neurons in Behavioral Despair, Conditioned Fear Memory and Active Coping

The ventral pallidum (VP), a core structure of the reward circuit, is well-associated with appetitive behaviors. Recent evidence suggests that this basal forebrain nucleus may have an overarching role in affective processing, including behavioral responses to aversive stimuli. We investigated this possibility by utilizing selective immunotoxin lesions and a series of behavioral tests in adult male Wistar rats. We made bilateral GAT1-Saporin, 192-IgG-Saporin or PBS (vehicle) injections into the VP to respectively eliminate GABAergic and cholinergic neurons, and tested the animals in the forced swim test (FST), open field test (OFT), elevated plus maze (EPM), Morris water maze (MWM) and cued fear conditioning. Both GAT1-Saporin and 192-IgG-Saporin injections reduced behavioral despair without altering general locomotor activity. This antidepressant-like effect was accompanied by reduced freezing and increased darting in the acquisition phase of cued fear conditioning. In the test phase, cholinergic, but not GABAergic lesions, impaired context-dependent fear memory, while both groups showed diminished conditioned freezing in a novel context. In line with this, selective cholinergic lesions impaired spatial memory in the MWM as compared to GAT1-Saporin or vehicle-injected animals. No differential effect was observed in anxiety-like behavior assessed in the OFT or EPM. These findings show that both the GABAergic and cholinergic cell groups of the VP contribute to behavioral despair and acquired fear responses by suppressing active coping. In conditioned learning, cholinergic ventral pallidal neurons contribute to the fear response in a context-independent manner, while the GABAergic population is required when the context information is missing. Significance StatementThe ventral pallidum (VP), associated with motivation and appetitive behaviors, is tested for its role in behavioral responses to aversive stimuli. Findings show that both the GABAergic and cholinergic neuronal groups of the VP contribute to behavioral despair and acquired fear response by suppressing active coping. In conditioned learning, the cholinergic neurons are required for the acquired fear response, while the VP GABAergic population becomes necessary only when the context information is missing. These results suggest that ventral pallidal GABAergic and cholinergic projections to the amygdaloid complex may constitute therapeutic targets for affective disorders.

neuroscience↗

Adaptive current-flow models of ECT: Explaining individual static impedance, dynamic impedance, and brain current delivery

BackgroundImprovements in electroconvulsive therapy (ECT) outcomes have followed refinement in device electrical output and electrode montage. The physical properties of the ECT stimulus, together with those of the patients head, determine the impedances measured by the device and govern current delivery to the brain and ECT outcomes. ObjectiveHowever, the precise relations among physical properties of the stimulus, patient head anatomy, and patient-specific impedance to the passage of current are long-standing questions in ECT research and practice. MethodsWe developed anatomical MRI-derived models of transcranial electrical stimulation (tES) that included changes in tissue conductivity due to local electrical current flow. These "adaptive" models simulate ECT both during therapeutic stimulation using high (~1 A) current and when dynamic impedance is measured, as well as prior to stimulation when low (~1 mA) current is used to measure static impedance. We modeled two scalp layers: a superficial scalp layer with adaptive conductivity that increases with electric field up to a subject specific maximum [Formula], and a deep scalp layer with a subject-specific fixed conductivity ({sigma}DS). ResultsWe demonstrate that variation in these scalp parameters explain clinical data on subject-specific static impedance and dynamic impedance, their imperfect correlation across subjects, their relationships to seizure threshold, and the role of head anatomy. Adaptive tES models demonstrate that current flow changes local tissue conductivity which in turn shapes current delivery to the brain in a manner not accounted for in fixed tissue conductivity models. ConclusionsOur predictions that variation in individual skin properties, rather than other aspects of anatomy, largely govern the relationship between static impedance, dynamic impedance, and current delivery to the brain, are themselves subject to assumptions about tissue properties. Broadly, our novel pipeline for tES models is important in ongoing efforts to optimize devices, personalize interventions, and explain clinical findings.

bioengineering↗