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Increased diisopropylfluorophosphate-induced toxicity in mu-opioid receptor knockout mice
Lu-Tai Tien1, Lir-Wan Fan, Tangeng Ma
1Department of Pharmacology and Toxicology, University of Mississippi Medical Center, Jackson, Mississippi 39216-4500, USA.
Abstract:
The potential involvement of mu-opioid receptors in mediating the changes of toxic signs and muscarinic receptor bindings after acute administration of irreversible antiacetylcholinesterase diisopropylfluorophosphate (DFP) was investigated. DFP-induced chewing movement and tremors were monitored for a period of 180 min in mu-opioid receptor knockout and wild-type mice. The autoradiographic studies of total, M1, and M2 muscarinic receptors were conducted using [(3)H]quinuclidinyl benzilate, [(3)H]pirenzepine, and [(3)H]AF-DX384 as ligands, respectively. Saline-treated mu-opioid receptor knockout and wild-type mice did not show chewing movement or tremors. Although DFP (1, 2, or 3 mg/kg, subcutaneous injection, s.c.)-induced chewing movement and tremors were shown in a dose-dependent manner, there were no significant differences in tremors induced by 1 or 2 mg/kg of DFP between mu-opioid receptor knockout and wild-type mice. There were also no significant differences in chewing movement induced by all doses of DFP between mu-opioid receptor knockout and wild-type mice. However, DFP (3 mg/kg)-induced tremors in mu-opioid receptor knockout mice were significantly increased over those in wild-type controls. Acetylcholinesterase activity in the striatum of saline-treated mu-opioid receptor knockout mice was significantly higher than that of the wild-type controls. After administration of DFP, acetylcholinesterase activity in the striatum of both mu-opioid receptor knockout and wild-type mice was significantly decreased (more than 36%, 58%, and 94% reduced at the doses of 1, 2, and 3 mg/kg, respectively) than that of their respective saline controls. M2 muscarinic receptor binding in saline-treated mu-opioid receptor knockout mice was significantly lower than that of the wild-type controls in the striatum. However, there were no significant differences in total, M1, or M2 muscarinic receptor binding in the cortex, striatum, or hippocampus of mu-opioid receptor knockout and wild-type mice after DFP administration. Our data show increased DFP-induced tremors, compensatory up-regulation of acetylcholinesterase activity, and compensatory down-regulation of M2 muscarinic receptors in the striatum of mice lacking mu-opioid receptor gene. These results suggest that the enhancement of DFP-induced tremors may be associated with the compensatory up-regulation of acetylcholinesterase activity and compensatory down-regulation of M2 muscarinic receptors in the striatum of mu-opioid receptor knockout mice.
Insights
Mu-opioid receptor knockout mice exhibit enhanced diisopropylfluorophosphate (DFP)-induced tremors, linked to increased acetylcholinesterase activity and altered M2 muscarinic receptors in the striatum.
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Diisopropylfluorophosphate (DFP) is an irreversible antiacetylcholinesterase agent.
- Mu-opioid receptors play a role in modulating neurological responses.
- Understanding receptor interactions is crucial for predicting toxicological outcomes.
Purpose of the Study:
- To investigate the role of mu-opioid receptors in DFP-induced toxicity.
- To examine changes in muscarinic receptor binding following DFP exposure.
- To determine if mu-opioid receptor knockout affects DFP toxicity.
Main Methods:
- Monitoring DFP-induced chewing and tremors in knockout and wild-type mice.
- Autoradiographic studies of muscarinic receptor subtypes (total, M1, M2).
- Measurement of acetylcholinesterase activity in the striatum.
Main Results:
- DFP induced dose-dependent tremors and chewing movements.
- DFP-induced tremors were significantly increased in mu-opioid receptor knockout mice at 3 mg/kg.
- Knockout mice showed higher baseline acetylcholinesterase activity and lower M2 receptor binding in the striatum.
Conclusions:
- Absence of mu-opioid receptors leads to enhanced DFP-induced tremors.
- Compensatory up-regulation of acetylcholinesterase and down-regulation of M2 muscarinic receptors in the striatum may contribute to increased tremors.
- Mu-opioid receptors influence the neurotoxic effects of antiacetylcholinesterase agents.
