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Published on: February 23, 2015
Effects of the nerve agent VX on hiPSC-derived motor neurons
Catherine Schaefers1, Wolfgang Schmeißer2, Harald John2
1Bundeswehr Institute of Pharmacology and Toxicology, Neuherbergstr. 11, 80937, Munich, Germany. catherine.schaefers@t-online.de.
Abstract:
Poisoning with the organophosphorus nerve agent VX can be life-threatening due to limitations of the standard therapy with atropine and oximes. To date, the underlying pathomechanism of VX affecting the neuromuscular junction has not been fully elucidated structurally. Results of recent studies investigating the effects of VX were obtained from cells of animal origin or immortalized cell lines limiting their translation to humans. To overcome this limitation, motor neurons (MN) of this study were differentiated from in-house feeder- and integration-free-derived human-induced pluripotent stem cells (hiPSC) by application of standardized and antibiotic-free differentiation media with the aim to mimic human embryogenesis as closely as possible. For testing VX sensitivity, MN were initially exposed once to 400 µM, 600 µM, 800 µM, or 1000 µM VX and cultured for 5 days followed by analysis of changes in viability and neurite outgrowth as well as at the gene and protein level using µLC-ESI MS/HR MS, XTT, IncuCyte, qRT-PCR, and Western Blot. For the first time, VX was shown to trigger neuronal cell death and decline in neurite outgrowth in hiPSC-derived MN in a time- and concentration-dependent manner involving the activation of the intrinsic as well as the extrinsic pathway of apoptosis. Consistent with this, MN morphology and neurite network were altered time and concentration-dependently. Thus, MN represent a valuable tool for further investigation of the pathomechanism after VX exposure. These findings might set the course for the development of a promising human neuromuscular test model and patient-specific therapies in the future.
Insights
Organophosphorus nerve agent VX poisoning causes neuronal cell death and reduces neurite outgrowth in human stem cell-derived motor neurons. This study establishes a human model for investigating VX toxicity and developing new therapies.
Area of Science:
- Neuroscience
- Toxicology
- Stem Cell Biology
Background:
- Organophosphorus nerve agent VX poisoning is life-threatening, with limited understanding of its neuromuscular junction effects.
- Current research on VX toxicity uses animal cells or immortalized lines, hindering human application.
- Standard therapies like atropine and oximes have limitations in treating VX poisoning.
Purpose of the Study:
- To investigate the pathomechanism of VX toxicity in human motor neurons (MN).
- To establish a human-specific in vitro model for VX neurotoxicity.
- To explore potential new therapeutic strategies for VX poisoning.
Main Methods:
- Human-induced pluripotent stem cells (hiPSC) were differentiated into motor neurons (MN) using standardized, antibiotic-free media.
- MN were exposed to varying concentrations of VX (400–1000 µM) for 5 days.
- Cell viability, neurite outgrowth, gene and protein expression, and apoptosis pathways were analyzed using techniques including µLC-ESI MS/HR MS, XTT, IncuCyte, qRT-PCR, and Western Blot.
Main Results:
- VX exposure triggered a time- and concentration-dependent decrease in MN viability and neurite outgrowth.
- VX altered MN morphology and neurite network structure.
- Both intrinsic and extrinsic apoptosis pathways were activated by VX exposure, leading to neuronal cell death.
Conclusions:
- hiPSC-derived MN provide a valuable human model for studying VX neurotoxicity mechanisms.
- This model can facilitate the development of novel therapeutic interventions for VX poisoning.
- Findings pave the way for patient-specific therapies and improved treatment strategies.

