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Assessment of Respiratory Function in Conscious Mice by Double-chamber Plethysmography
Published on: July 10, 2018
How does organophosphorus chemical warfare agent exposure affect respiratory physiology in mice?
Marilène Trancart1, Antoine Botta1, Christine Le Coz1
1French Armed Forces Biomedical Research Institute, CBRN Defense Division, Toxicology and Chemical Risks Department, France.
Abstract:
In the absence of appropriate medical care, exposure to organophosphorus nerve agents, such as VX, can lead to respiratory failure, and potentially death by asphyxiation. Despite the critical role of respiratory disturbances in organophosphorus-induced toxicity, the nature and underlying mechanisms of respiratory failure remain poorly understood. This study aimed to characterize respiratory alterations by determining their type and duration in mice exposed to a subcutaneous sublethal dose of VX. Respiratory ventilation in Swiss mice was monitored using dual-chamber plethysmography for up to 7 days post-exposure. Cholinesterase activity was assessed via spectrophotometry, and levels of inflammatory biomarkers were quantified using Luminex technology in blood and tissues involved in respiration (diaphragm, lung, and medulla oblongata). Additionally, a histological study was conducted on these tissues to ensure their structural integrity. Ventilatory alterations appeared 20-25 minutes after the injection of 0.9 LD50 VX and increased until the end of the recording, i.e., 40 minutes after intoxication. Concurrent with the occurrence of apnea, increased inspiratory and expiratory times resulted in a significant decrease in respiratory rate in exposed mice compared to controls. Ventilatory amplitude and, consequently, minute volume were reduced, while specific airway resistance significantly increased, indicating bronchoconstriction. These ventilatory effects persisted up to 24 or even 72 hours post-intoxication, resolving on the 7th day. They were correlated with a decrease in acetylcholinesterase activity in the diaphragm, which persisted for up to 72 hours, and with the triggering of an inflammatory reaction in the same tissue. No significant histologic lesions were observed in the examined tissues. The ventilatory alterations observed up to 72 hours post-VX exposure appear to result from a functional failure of the respiratory system rather than tissue damage. This comprehensive characterization contributes to a better understanding of the respiratory effects induced by VX exposure, which is crucial for developing specific medical countermeasures.
Insights
VX nerve agent exposure causes significant respiratory problems, including slowed breathing and airway constriction, lasting up to 72 hours. These effects stem from functional respiratory failure, not tissue damage, highlighting the need for medical countermeasures.
Area of Science:
- Toxicology
- Respiratory Physiology
- Neuroscience
Background:
- Organophosphorus nerve agents like VX are potent toxins.
- Respiratory failure is a primary cause of death from VX exposure.
- Mechanisms underlying VX-induced respiratory dysfunction are not fully understood.
Purpose of the Study:
- To characterize the type and duration of respiratory alterations following sublethal VX exposure in mice.
- To investigate the physiological and biochemical changes associated with VX-induced respiratory failure.
Main Methods:
- Mice were exposed to a sublethal dose of VX (0.9 LD50).
- Respiratory ventilation was monitored using dual-chamber plethysmography.
- Cholinesterase activity, inflammatory biomarkers, and tissue histology were analyzed.
Main Results:
- VX exposure caused decreased respiratory rate, reduced tidal volume, and increased airway resistance.
- Apnea and prolonged inspiratory/expiratory times were observed.
- These effects persisted for up to 72 hours and correlated with reduced acetylcholinesterase activity and inflammation in the diaphragm.
Conclusions:
- VX exposure induces significant, prolonged ventilatory dysfunction in mice.
- The observed alterations result from functional impairment of the respiratory system, not structural damage.
- Understanding these mechanisms is vital for developing effective medical countermeasures against VX toxicity.

