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Published on: April 23, 2019
(+/-)3,4-Methylenedioxyamphetamine elicits action potential bursts in a central snail neuron
Ming-Cheng Tsai1, Yi-Hung Chen
1Department of Pharmacology, College of Medicine, National Taiwan University, No.1, Section 1, Jen-Ai Road, Taipei, Taiwan.
Abstract:
The effects of (+/-)3,4-methylenedioxyamphetamine (MDA) were studied in an identifiable RP4 neuron of the African snail, Achatina fulica Ferussac, using the two-electrode voltage-clamp method. The RP4 neuron generated spontaneous action potentials. Extracellular or intracellular application of MDA elicited action potential bursts of the central RP4 neuron. The action potential bursts elicited by MDA were not blocked when neurons were immersed in high-Mg2+ solution, Ca2+-free solution, nor after continuous perfusion with atropine, d-tubocurarine, propranolol, prazosin, haloperidol, sulpiride or methiothepin. Notably, the induction of action potential bursts was blocked by pretreatment with protein kinase C (PKC) inhibitors, chelerythrine and Ro 31-8220, but not by protein kinase A (PKA) inhibitors, KT-5720 and H89, nor by the phospholipase C (PLC) inhibitor, U73122. PKC activators, i.e., phorbol 12,13-dibutyrate (PDBu) and 1-oleoyl-2-acety-sn-glycerol (OAG; a membrane-permeant DAG analog), facilitate the induction of action potential bursts elicited by MDA. Voltage-clamp studies revealed that MDA decreased the delayed rectifying K+ current (I(KD)) of the RP4 neuron. Further, although Ro 31-8220 did not affect the I(KD), Ro 31-8220 decreased the inhibitory effect of MDA on the I(KD). These results suggest that the generation of action potential bursts elicited by MDA was not due to (1) the synaptic effects of neurotransmitters, (2) the cholinergic, adrenergic, dopaminergic or serotoninergic receptors of the excitable membrane. Instead, the MDA-elicited action potential bursts are closely related to PKC activity and the inhibitory effects on the I(KD).
Insights
3,4-methylenedioxyamphetamine (MDA) induces action potential bursts in snail neurons by inhibiting potassium currents, a process dependent on protein kinase C (PKC) activity, not synaptic transmission.
Area of Science:
- Neuroscience
- Pharmacology
- Cellular Electrophysiology
Background:
- The African snail's RP4 neuron exhibits spontaneous action potentials.
- Understanding the mechanisms of drug-induced neuronal activity is crucial.
Purpose of the Study:
- To investigate the cellular mechanisms underlying the effects of 3,4-methylenedioxyamphetamine (MDA) on Achatina fulica RP4 neurons.
- To determine the specific signaling pathways involved in MDA-induced action potential bursts.
Main Methods:
- Two-electrode voltage-clamp technique applied to Achatina fulica RP4 neurons.
- Application of MDA and various pharmacological inhibitors (PKC, PKA, PLC inhibitors) and activators.
- Analysis of changes in ion currents, specifically the delayed rectifying K+ current (I(KD)).
Main Results:
- MDA induced action potential bursts, independent of synaptic transmission or common neurotransmitter receptors.
- PKC inhibitors blocked MDA-induced bursts, while PKC activators facilitated them.
- MDA was found to decrease the delayed rectifying K+ current (I(KD)), an effect modulated by PKC.
Conclusions:
- MDA-induced action potential bursts in RP4 neurons are mediated by protein kinase C (PKC) activation.
- The observed bursts are linked to a PKC-dependent inhibition of the delayed rectifying K+ current (I(KD)).
- These findings highlight a non-synaptic mechanism for MDA's effects on neuronal excitability.
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