1.Spinal Gabapentin and Antinociception: Mechanisms of Action.
Myung Ha YOON ; Jeong Il CHOI ; Seong Wook JEONG
Journal of Korean Medical Science 2003;18(2):255-261
Spinal gabapentin has been known to show the antinociceptive effect. Although several assumptions have been suggested, mechanisms of action of gabapentin have not been clearly established. The present study was undertaken to examine the action mechanisms of gabapentin at the spinal level. Male SD rats were prepared for intrathecal catheterization. The effect of gabapentin was assessed in the formalin test. After pretreatment with many classes of drugs, changes of effect of gabapentin were examined. General behaviors were also observed. Intrathecal gabapentin produced a suppression of the phase 2 flinching, but not phase 1 in the formalin test. The antinociceptive action of intrathecal gabapentin was reversed by intrathecal NMDA, AMPA, D-serine, CGS 15943, atropine, and naloxone. No antagonism was seen following administration of bicuculline, saclofen, prazosin, yohimbine, mecamylamine, L-leucine, dihydroergocristine, or thapsigargin. Taken together, intrathecal gabapentin attenuated only the facilitated state. At the spinal level, NMDA receptor, AMPA receptor, nonstrychnine site of NMDA receptor, adenosine receptor, muscarinic receptor, and opioid receptor may be involved in the antinociception of gabapentin, but GABA receptor, L-amino acid transporter, adrenergic receptor, nicotinic receptor, serotonin receptor, or calcium may not be involved.
Acetic Acids/administration & dosage
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Acetic Acids/metabolism
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Acetic Acids/pharmacology*
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Adrenergic Antagonists/metabolism
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Adrenergic alpha-Antagonists/metabolism
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Analgesics/administration & dosage
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Analgesics/metabolism
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Analgesics/pharmacology*
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Animals
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Atropine/metabolism
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Dihydroergocristine/metabolism
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Enzyme Inhibitors/metabolism
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Excitatory Amino Acid Agonists/metabolism
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GABA Antagonists/metabolism
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Injections, Spinal
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Leucine/metabolism
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Male
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Mecamylamine/metabolism
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Muscarinic Antagonists/metabolism
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N-Methylaspartate/metabolism
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Naloxone/metabolism
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Narcotic Antagonists/metabolism
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Nicotinic Antagonists/metabolism
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Pain Measurement
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Quinazolines/metabolism
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Rats
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Rats, Sprague-Dawley
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Serine/metabolism
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Spinal Cord/drug effects*
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Thapsigargin/metabolism
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Triazoles/metabolism
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alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid/metabolism
2.Neuroprotective effect of the ethanol extract of Artemisia capillaris on transient forebrain ischemia in mice via nicotinic cholinergic receptor.
Huiyoung KWON ; Ji Wook JUNG ; Young Choon LEE ; Jong Hoon RYU ; Dong Hyun KIM
Chinese Journal of Natural Medicines (English Ed.) 2018;16(6):428-435
Artemisia capillaris Thunberg is a medicinal plant used as a traditional medicine in many cultures. It is an effective remedy for liver problems including hepatitis. Recent pharmacological reports have indicated that Artemisia species can exert various neurological effects. Previously, we reported a memory-enhancing effect of Artemisia species. However, the mechanisms underlying the neuroprotective effect of A. capillaris (AC) are still unknown. In the present study, we investigated the effect of an ethanol extract of AC on ischemic brain injury in a mouse model of transient forebrain ischemia. The mice were treated with AC for seven days, beginning one day before induction of transient forebrain ischemia. Behavioral deficits were investigated using the Y-maze. Nissl and Fluoro-jade B staining were used to indicate the site of injury. To determine the underlying mechanisms for the drug, we measured acetylcholinesterase activity. AC (200 mg·kg) treatment reduced transient forebrain ischemia-induced neuronal cell death in the hippocampal CA1 region. The AC-treated group also showed significant amelioration in the spontaneous alternation of the Y-maze test performance, compared to that in the untreated transient forebrain ischemia group. Moreover, AC treatment showed a concentration-dependent inhibitory effect on acetylcholinesterase activity in vitro. Finally, the effect of AC on forebrain ischemia was blocked by mecamylamine, a nonselective nicotinic acetylcholine receptor antagonist. Our results suggested that in a model of forebrain ischemia, AC protected against neuronal death through the activation of nicotinic acetylcholine receptors.
Acetylcholinesterase
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metabolism
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Animals
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Artemisia
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Cell Death
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drug effects
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Cholinergic Antagonists
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pharmacology
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Disease Models, Animal
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Ethanol
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chemistry
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Hippocampus
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pathology
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physiopathology
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Ischemic Attack, Transient
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drug therapy
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pathology
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physiopathology
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Male
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Mecamylamine
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pharmacology
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Memory
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drug effects
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Mice
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Mice, Inbred C57BL
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Models, Neurological
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Neuroprotective Agents
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administration & dosage
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pharmacology
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Phytotherapy
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Plant Components, Aerial
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chemistry
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Plant Extracts
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administration & dosage
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pharmacology
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Receptors, Cholinergic
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metabolism