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Jürg Gertsch

3 papers in the library · 118 citations · publishing 2015-2017

Papers

Pharmacokinetics and pharmacodynamics of γ‐hydroxybutyrate in healthy subjects

British Journal of Clinical Pharmacology December 11, 2015 Matthias E. Liechti, Boris B. Quednow, Evangelia Liakoni et al. 57 citations

Gamma-hydroxybutyrate (GHB) produced mixed stimulant-sedative effects in healthy men, with higher doses causing more sedation and dizziness but no changes in heart rate or blood pressure. Plasma exposure to GHB rose disproportionately with dose—a 40% greater increase than expected from dose alone—indicating nonlinear pharmacokinetics. The psychotropic effects were closely tied to plasma concentrations, and no acute tolerance developed over time.

Gamma-hydroxybutyrate enhances mood and prosocial behavior without affecting plasma oxytocin and testosterone

Psychoneuroendocrinology July 17, 2015 Oliver G. Bosch, Christoph Eisenegger, Jürg Gertsch et al. 42 citations

Gamma-hydroxybutyrate (GHB), a GHB-/GABAB-receptor agonist, produces euphoric, disinhibiting, and vitality-enhancing effects in healthy men. In a randomized, placebo-controlled crossover trial with 16 males, a single 20 mg/kg dose increased charitable donations and prosocial money distributions among participants who initially showed low prosociality. However, GHB did not alter emotion recognition, empathy, theory-of-mind, or basic cognitive functions. The drug raised plasma progesterone levels but left oxytocin, testosterone, cortisol, aldosterone, DHEA, and ACTH unchanged. These findings suggest that GHB's mood and prosocial effects may involve GHB-/GABAB-receptors and progesterone rather than typical social hormones like oxytocin or testosterone.

Neuronal oscillations and synchronicity associated with gamma-hydroxybutyrate during resting-state in healthy male volunteers

Psychopharmacology July 1, 2017 Robin Rotz, Michael Kometer, Dario Dornbierer et al. 19 citations

Gamma-hydroxybutyrate (GHB) increases theta oscillations in the posterior cingulate cortex and alpha1 oscillations in the anterior cingulate cortex, while decreasing the global omega complexity of alpha1 oscillations. Higher blood plasma levels of GHB are linked to increased delta oscillation connectivity between the posterior cingulate cortex and the right inferior parietal lobulus. These neural changes in the posterior cingulate cortex may explain the paradoxical dissociation between EEG patterns and behavior that GHB produces, where brain activity resembles sleep during wakefulness. The reduced number of independent neuronal processes is similar to effects seen with other anesthetics.