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Published on: February 5, 2018
Synthetic Cathinones Induce Cell Death in Dopaminergic SH-SY5Y Cells via Stimulating Mitochondrial Dysfunction
Huey Sze Leong1,2, Morgan Philp1, Martin Simone2
1Centre for Forensic Science, School of Mathematical and Physical Sciences, University of Technology Sydney, Ultimo NSW 2007, Australia.
Abstract:
Increasing reports of neurological and psychiatric complications due to psychostimulant synthetic cathinones (SCs) have recently raised public concern. However, the precise mechanism of SC toxicity is unclear. This paucity of understanding highlights the need to investigate the in-vitro toxicity and mechanistic pathways of three SCs: butylone, pentylone, and 3,4-Methylenedioxypyrovalerone (MDPV). Human neuronal cells of SH-SY5Y were cultured in supplemented DMEM/F12 media and differentiated to a neuronal phenotype using retinoic acid (10 μM) and 12-O-tetradecanoylphorbol-13-acetate (81 nM). Trypan blue and lactate dehydrogenase assays were utilized to assess the neurotoxicity potential and potency of these three SCs. To investigate the underlying neurotoxicity mechanisms, measurements included markers of oxidative stress, mitochondrial bioenergetics, and intracellular calcium (Ca2+), and cell death pathways were evaluated at two doses (EC15 and EC40), for each drug tested. Following 24 h of treatment, all three SCs exhibited a dose-dependent neurotoxicity, characterized by a significant (p < 0.0001 vs. control) production of reactive oxygen species, decreased mitochondrial bioenergetics, and increased intracellular Ca2+ concentrations. The activation of caspases 3 and 7 implicated the orchestration of mitochondrial-mediated neurotoxicity mechanisms for these SCs. Identifying novel therapeutic agents to enhance an altered mitochondrial function may help in the treatment of acute-neurological complications arising from the illicit use of these SCs.
Insights
Synthetic cathinones (SCs) cause neurotoxicity through oxidative stress and mitochondrial dysfunction. This study investigated butylone, pentylone, and MDPV, revealing dose-dependent damage and caspase activation, suggesting mitochondrial pathways are key targets for treatment.
Area of Science:
- Neuroscience
- Toxicology
- Pharmacology
Background:
- Synthetic cathinones (SCs) are associated with increasing neurological and psychiatric complications.
- The precise mechanisms underlying SC neurotoxicity remain largely unknown.
- Understanding SC toxicity is crucial due to rising public health concerns.
Purpose of the Study:
- To investigate the in-vitro neurotoxicity of butylone, pentylone, and 3,4-Methylenedioxypyrovalerone (MDPV).
- To elucidate the mechanistic pathways of SC-induced neurotoxicity.
- To assess oxidative stress, mitochondrial function, and cell death pathways.
Main Methods:
- Human neuroblastoma SH-SY5Y cells were differentiated into a neuronal phenotype.
- Cells were treated with varying doses of butylone, pentylone, and MDPV.
- Neurotoxicity was assessed using cell viability assays; mechanisms evaluated via oxidative stress markers, mitochondrial bioenergetics, intracellular calcium levels, and caspase activation.
Main Results:
- All three SCs demonstrated dose-dependent neurotoxicity.
- Significant increases in reactive oxygen species and intracellular calcium were observed.
- Decreased mitochondrial bioenergetics and activation of caspases 3 and 7 indicated mitochondrial-mediated cell death.
Conclusions:
- Butylone, pentylone, and MDPV induce neurotoxicity via oxidative stress and mitochondrial dysfunction.
- Mitochondrial-mediated cell death pathways are implicated in SC toxicity.
- Targeting mitochondrial function may offer therapeutic strategies for SC-induced neurological complications.
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