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Updated: Sep 27, 2026

A Neuronal and Astrocyte Co-Culture Assay for High Content Analysis of Neurotoxicity
Published on: May 5, 2009
Neurotoxicity of Synthetic Cannabinoid Receptor Agonist Cumyl-PINACA: An In Vitro Study on Rat Cortical Neurons and
Damijana Mojca Jurič1, Klara Bulc Rozman2, Metoda Lipnik-Štangelj1
1Institute of Pharmacology and Experimental Toxicology, Faculty of Medicine, University of Ljubljana, Korytkova 2, 1000 Ljubljana, Slovenia.
Abstract:
Background/Objectives: Synthetic cannabinoid receptor agonists (SCRAs) are associated with severe neurotoxicity, but the cellular mechanisms underlying their effects remain poorly defined. We investigated the effects of Cumyl-PINACA (SGT-24), a carboxamide-type SCRA derived from cumylamine, on rat cortical neurons and astrocytes. Methods: Primary rat cortical neurons and astrocytes were exposed to 1-10,000 nM SGT-24. Metabolic activity, mitochondrial function, morphology, and cell death were evaluated. Selective antagonists of cannabinoid receptor type 1 (CB1), G protein-coupled receptor 55 (GPR55), peroxisome proliferator-activated receptor gamma (PPARγ), and transient receptor potential cation channel subfamily V member 1 (TRPV1) were used to probe the involvement of these receptor pathways. Results: SGT-24 decreased metabolic activity in both cell types in a concentration- and time-dependent manner, with greater potency in neurons (IC50 = 13.2 nM) than in astrocytes (IC50 = 39.8 nM). After 24 h, maximal effects were observed at 100 nM in neurons and 500 nM in astrocytes, reducing metabolic activity by 45.2% and 36.2%, respectively. At these concentrations, mitochondrial membrane potential decreased to 57.6% and 54.1% of control, while cellular ATP levels fell to 51.6% and 52.5%, respectively. Neurons predominantly exhibited early apoptosis (21.9% of cells vs. 3.1% in controls), whereas astrocytes showed mainly 7-aminoactinomycin D (7-AAD)-positive cell death (19.3% vs. 8.2% in controls). Pharmacological inhibition of CB1, TRPV1, and PPARγ attenuated SGT-24-induced metabolic impairment, mitochondrial dysfunction, and apoptosis in neurons, whereas inhibition of CB1 and PPARγ reduced astrocytic toxicity. Conclusions: SGT-24 exerts potent, cell-type-dependent neuroglial toxicity associated with mitochondrial dysfunction and distinct cell death patterns, suggesting the involvement of cannabinoid receptor-dependent and non-cannabinoid signalling mechanisms. The nanomolar potency of SGT-24 underscores the toxicological risk posed by high-potency SCRAs.
