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Updated: Jan 27, 2026

Modeling Myotonic Dystrophy 1 in C2C12 Myoblast Cells
Published on: July 29, 2016
Molecular Toxicological Mechanisms of Synthetic Cathinones on C2C12 Myoblasts
Xun Zhou1, Dino Luethi2, Gerda M Sanvee3
1Division of Clinical Pharmacology & Toxicology, Department of Biomedicine, University Hospital Basel and University of Basel, 4031 Basel, Switzerland. Xun.Zhou@unibas.ch.
Abstract:
Synthetic cathinones are popular psychoactive substances that may cause skeletal muscle damage. In addition to indirect sympathomimetic myotoxicity, these substances could be directly myotoxic. Since studies in myocytes are currently lacking, the aim of the present study was to investigate potential toxicological effects by synthetic cathinones on C2C12 myoblasts (mouse skeletal muscle cell line). We exposed C2C12 myoblasts to 3-methylmethcathinone, 4-methylmethcathinone (mephedrone), 3,4-methylenedioxymethcathinone (methylone), 3,4-methylenedioxypyrovalerone (MDPV), alpha-pyrrolidinovalerophenone (α-PVP), and naphthylpyrovalerone (naphyrone) for 1 or 24 h before cell membrane integrity, ATP content, mitochondrial oxygen consumption, and mitochondrial superoxide production was measured. 3,4-Methylenedioxymethamphetamine (MDMA) was included as a reference compound. All investigated synthetic cathinones, as well as MDMA, impaired cell membrane integrity, depleted ATP levels, and increased mitochondrial superoxide concentrations in a concentration-dependent manner in the range of 50⁻2000 μM. The two pyrovalerone derivatives α-PVP and naphyrone, and MDMA, additionally impaired basal and maximal cellular respiration, suggesting mitochondrial dysfunction. Alpha-PVP inhibited complex I, naphyrone complex II, and MDMA complex I and III, whereas complex IV was not affected. We conclude that, in addition to sympathetic nervous system effects and strenuous muscle exercise, direct effects of some cathinones on skeletal muscle mitochondria may contribute to myotoxicity in susceptible synthetic cathinone drugs users.
Insights
Synthetic cathinones, like mephedrone and MDPV, directly damage skeletal muscle cells. These drugs deplete energy and harm mitochondria, contributing to muscle injury in users.
Area of Science:
- Pharmacology
- Toxicology
- Cell Biology
Background:
- Synthetic cathinones are psychoactive drugs known to cause skeletal muscle damage.
- Previous research focused on indirect toxicity; direct myotoxicity in muscle cells remains understudied.
Purpose of the Study:
- To investigate the direct toxicological effects of various synthetic cathinones on skeletal muscle cells (C2C12 myoblasts).
Main Methods:
- C2C12 myoblasts were exposed to synthetic cathinones (including mephedrone, methylone, MDPV, α-PVP, naphyrone) and MDMA for 1 or 24 hours.
- Assessed cell membrane integrity, ATP content, mitochondrial oxygen consumption, and superoxide production.
Main Results:
- All tested cathinones and MDMA impaired cell membrane integrity, depleted ATP, and increased mitochondrial superoxide production in a dose-dependent manner.
- α-PVP, naphyrone, and MDMA impaired cellular respiration, indicating mitochondrial dysfunction.
- Specific mitochondrial complexes were inhibited: α-PVP (Complex I), naphyrone (Complex II), and MDMA (Complex I and III).
Conclusions:
- Synthetic cathinones can exert direct toxic effects on skeletal muscle cells.
- Mitochondrial dysfunction and damage are key mechanisms contributing to cathinone-induced myotoxicity.
- These direct cellular effects, alongside indirect sympathomimetic actions, likely contribute to muscle damage in users.
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