1.GABA Receptor Activity Suppresses the Transition from Inter-ictal to Ictal Epileptiform Discharges in Juvenile Mouse Hippocampus.
Yan-Yan CHANG ; Xin-Wei GONG ; Hai-Qing GONG ; Pei-Ji LIANG ; Pu-Ming ZHANG ; Qin-Chi LU
Neuroscience Bulletin 2018;34(6):1007-1016
Exploring the transition from inter-ictal to ictal epileptiform discharges (IDs) and how GABA receptor-mediated action affects the onset of IDs will enrich our understanding of epileptogenesis and epilepsy treatment. We used Mg-free artificial cerebrospinal fluid (ACSF) to induce epileptiform discharges in juvenile mouse hippocampal slices and used a micro-electrode array to record the discharges. After the slices were exposed to Mg-free ACSF for 10 min-20 min, synchronous recurrent seizure-like events were recorded across the slices, and each event evolved from inter-ictal epileptiform discharges (IIDs) to pre-ictal epileptiform discharges (PIDs), and then to IDs. During the transition from IIDs to PIDs, the duration of discharges increased and the inter-discharge interval decreased. After adding 3 μmol/L of the GABA receptor agonist muscimol, PIDs and IDs disappeared, and IIDs remained. Further, the application of 10 μmol/L muscimol abolished all the epileptiform discharges. When the GABA receptor antagonist bicuculline was applied at 10 μmol/L, IIDs and PIDs disappeared, and IDs remained at decreased intervals. These results indicated that there are dynamic changes in the hippocampal network preceding the onset of IDs, and GABA receptor activity suppresses the transition from IIDs to IDs in juvenile mouse hippocampus.
Animals
;
Animals, Newborn
;
Bicuculline
;
pharmacology
;
Disease Models, Animal
;
Epilepsy
;
pathology
;
GABA-A Receptor Agonists
;
pharmacology
;
GABA-A Receptor Antagonists
;
therapeutic use
;
Hippocampus
;
drug effects
;
metabolism
;
physiopathology
;
In Vitro Techniques
;
Magnesium
;
metabolism
;
pharmacology
;
Male
;
Membrane Potentials
;
drug effects
;
Mice
;
Mice, Inbred C57BL
;
Muscimol
;
pharmacology
;
Nerve Net
;
drug effects
;
Receptors, GABA-A
;
metabolism
2.Participation of central GABAA receptors in the trigeminal processing of mechanical allodynia in rats.
Min Ji KIM ; Young Hong PARK ; Kui Ye YANG ; Jin Sook JU ; Yong Chul BAE ; Seong Kyu HAN ; Dong Kuk AHN
The Korean Journal of Physiology and Pharmacology 2017;21(1):65-74
Here we investigated the central processing mechanisms of mechanical allodynia and found a direct excitatory link with low-threshold input to nociceptive neurons. Experiments were performed on male Sprague-Dawley rats weighing 230-280 g. Subcutaneous injection of interleukin 1 beta (IL-1β) (1 ng/10 µL) was used to produce mechanical allodynia and thermal hyperalgesia. Intracisternal administration of bicuculline, a gamma aminobutyric acid A (GABAA) receptor antagonist, produced mechanical allodynia in the orofacial area under normal conditions. However, intracisternal administration of bicuculline (50 ng) produced a paradoxical anti-allodynic effect under inflammatory pain conditions. Pretreatment with resiniferatoxin (RTX), which depletes capsaicin receptor protein in primary afferent fibers, did not alter the paradoxical anti-allodynic effects produced by the intracisternal injection of bicuculline. Intracisternal injection of bumetanide, an Na-K-Cl cotransporter (NKCC 1) inhibitor, reversed the IL-1β-induced mechanical allodynia. In the control group, application of GABA (100 µM) or muscimol (3 µM) led to membrane hyperpolarization in gramicidin perforated current clamp mode. However, in some neurons, application of GABA or muscimol led to membrane depolarization in the IL-1β-treated rats. These results suggest that some large myelinated Aβ fibers gain access to the nociceptive system and elicit pain sensation via GABA(A) receptors under inflammatory pain conditions.
Animals
;
Bicuculline
;
Bumetanide
;
Capsaicin
;
gamma-Aminobutyric Acid
;
Gramicidin
;
Humans
;
Hyperalgesia*
;
Injections, Subcutaneous
;
Interleukin-1beta
;
Male
;
Membranes
;
Muscimol
;
Myelin Sheath
;
Neurons
;
Nociceptors
;
Rats*
;
Rats, Sprague-Dawley
;
Receptors, GABA-A
;
Sensation
3.Potentiation of decursinol angelate on pentobarbital-induced sleeping behaviors via the activation of GABA(A)-ergic systems in rodents.
Jae Hoon WOO ; Tae Woo HA ; Jae Seon KANG ; Jin Tae HONG ; Ki Wan OH
The Korean Journal of Physiology and Pharmacology 2017;21(1):27-36
Angelicae Gigantis Radix (AGR, Angelica gigas) has been used for a long time as a traditional folk medicine in Korea and oriental countries. Decursinol angelate (DCA) is structurally isomeric decursin, one of the major components of AGR. This study was performed to confirm whether DCA augments pentobarbital-induced sleeping behaviors via the activation of GABA(A)-ergic systems in animals. Oral administration of DCA (10, 25 and 50 mg/kg) markedly suppressed spontaneous locomotor activity. DCA also prolonged sleeping time, and decreased the sleep latency by pentobarbital (42 mg/kg), in a dose-dependent manner, similar to muscimol, both at the hypnotic (42 mg/kg) and sub-hypnotic (28 mg/kg) dosages. Especially, DCA increased the number of sleeping animals in the sub-hypnotic dosage. DCA (50 mg/kg, p.o.) itself modulated sleep architectures; DCA reduced the counts of sleep/wake cycles. At the same time, DCA increased total sleep time, but not non-rapid eye movement (NREM) and rapid eye movement (REM) sleep. In the molecular experiments. DCA (0.001, 0.01 and 0.1 µg/ml) increased intracellular Cl- influx level in hypothalamic primary cultured neuronal cells of rats. In addition, DCA increased the protein expression of glutamic acid decarboxylase (GAD(65/67)) and GABA(A) receptors subtypes. Taken together, these results suggest that DCA potentiates pentobarbital-induced sleeping behaviors through the activation of GABA(A)-ergic systems, and can be useful in the treatment of insomnia.
Administration, Oral
;
Angelica
;
Animals
;
Electroencephalography
;
Eye Movements
;
Glutamate Decarboxylase
;
Korea
;
Medicine, Traditional
;
Motor Activity
;
Muscimol
;
Neurons
;
Pentobarbital
;
Rats
;
Receptors, GABA-A
;
Rodentia*
;
Sleep Initiation and Maintenance Disorders
;
Sleep, REM
4.4-Hydroxybenzaldehyde, One of Constituents from Gastrodiae Rhizoma Augments Pentobarbital-induced Sleeping Behaviors and Non-rapid Eye Movement (NREM) Sleep in Rodents.
Jae Joon CHOI ; Young Shik KIM ; Yeong Ok KWON ; Jae Hyeon YOO ; Myong Soo CHONG ; Mi Kyeong LEE ; Jin Tae HONG ; Ki Wan OH
Natural Product Sciences 2015;21(3):219-225
In the previous experiments, we reported that ethanol extract of Gastrodiae Rhizoma, the dried tuber of Gastrodia ElataBlume (Orchidaceae) increased pentobarbital-induced sleeping behaviors. These experiments were undertaken to know whether 4-hydroxybenzaldehyde (4-HBD), is one of the major compounds of Gastrodiae Rhizoma increases pentobarbital-induced sleeping behaviors and changes sleep architectures via activating GABA(A)-ergic systems in rodents. 4-HBD decreased locomotor activity in mice. 4-HBD increased total sleep time, and decreased of sleep onset by pentobarbital (28 mg/kg and 40 mg/kg). 4-HBD showed synergistic effects with muscimol (a GABA(A) receptor agonist), shortening sleep onset and enhancing sleep time on pentobarbital-induced sleeping behaviors. On the other hand, 4-HBD (200 mg/kg, p.o.) itself significantly inhibited the counts of sleep-wake cycles, and prolonged total sleep time and non-rapid eye movement (NREM) in rats. Moreover, 4-HBD increased intracellular Cl- levels in the primary cultured cerebellar cells. The protein levels of glutamic acid decarboxylase (GAD) and GABA(A) receptors subunits were over-expressed by 4-HBD. Consequently, these results demonstrate that 4-HBD increased NREM sleep as well as sleeping behaviors via the activation of GABA(A)-ergic systems in rodents.
Animals
;
Ethanol
;
Eye Movements*
;
Gastrodia*
;
Glutamate Decarboxylase
;
Hand
;
Mice
;
Motor Activity
;
Muscimol
;
Pentobarbital
;
Rats
;
Receptors, GABA-A
;
Rodentia*
5.Differential Role of Central GABA Receptors in Nociception of Orofacial Area in Rats.
Ah Ram LEE ; Nak Hyung LIM ; Hye Jin KIM ; Min Ji KIM ; Jin Sook JU ; Min Kyoung PARK ; Min Kyung LEE ; Kui Ye YANG ; Dong Kuk AHN
International Journal of Oral Biology 2015;40(3):117-125
The present study investigated the role of central GABA(A) and GABA(B) receptors in orofacial pain in rats. Experiments were conducted on Sprague-Dawley rats weighing between 230 and 280 g. Intracisternal catheterization was performed for intracisternal injection, under ketamine anesthesia. Complete Freund's Adjuvant (CFA)-induced thermal hyperalgesia and inferior alveolar nerve injury-induced mechanical allodynia were employed as orofacial pain models. Intracisternal administration of bicuculline, a GABA(A) receptor antagonist, produced mechanical allodynia in naive rats, but not thermal hyperalgesia. However, CGP35348, a GABA(B) receptor antagonist, did not show any pain behavior in naive rats. Intracisternal administration of muscimol, a GABA(A) receptor agonist, attenuated the thermal hyperalgesia and mechanical allodynia in rats with CFA treatment and inferior alveolar nerve injury, respectively. On the contrary, intracisternal administration of bicuculline also attenuated the mechanical allodynia in rats with inferior alveolar nerve injury. Intracisternal administration of baclofen, a GABA(B) receptor agonist, attenuated the thermal hyperalgesia and mechanical allodynia in rats with CFA treatment and inferior alveolar nerve injury, respectively. In contrast to GABA(A) receptor antagonist, intracisternal administration of CGP35348 did not affect either the thermal hyperalgesia or mechanical allodynia. Our current findings suggest that the GABA(A) receptor, but not the GABA(B) receptor, participates in pain processing under normal conditions. Intracisternal administration of GABA(A) receptor antagonist, but not GABA(B) receptor antagonist, produces paradoxical antinociception under pain conditions. These results suggest that central GABA has differential roles in the processing of orofacial pain, and the blockade of GABA(A) receptor provides new therapeutic targets for the treatment of chronic pain.
Anesthesia
;
Animals
;
Baclofen
;
Bicuculline
;
Catheterization
;
Catheters
;
Chronic Pain
;
Facial Pain
;
Freund's Adjuvant
;
gamma-Aminobutyric Acid*
;
Hyperalgesia
;
Ketamine
;
Mandibular Nerve
;
Muscimol
;
Nociception*
;
Rats*
;
Rats, Sprague-Dawley
;
Receptors, GABA*
;
Receptors, GABA-A
6.Pachymic Acid Enhances Pentobarbital-Induced Sleeping Behaviors via GABA(A)-ergic Systems in Mice.
Vikash Kumar SHAH ; Jae Joon CHOI ; Jin Yi HAN ; Mi Kyeong LEE ; Jin Tae HONG ; Ki Wan OH
Biomolecules & Therapeutics 2014;22(4):314-320
This study was investigated to know whether pachymic acid (PA), one of the predominant triterpenoids in Poria cocos (Hoelen) has the sedative-hypnotic effects, and underlying mechanisms are mediated via gamma-aminobutyric acid (GABA)-ergic systems. Oral administration of PA markedly suppressed locomotion activity in mice. This compound also prolonged sleeping time, and reduced sleep latency showing synergic effects with muscimol (0.2 mg/kg) in shortening sleep onset and enhancing sleep time induced by pentobarbital, both at the hypnotic (40 mg/kg) and sub-hypnotic (28 mg/kg) doses. Additionally, PA elevated intracellular chloride levels in hypothalamic primary cultured neuronal cells of rats. Moreover, Western blotting quantitative results showed that PA increased the amount of protein level expression of GAD65/67 over a broader range of doses. PA increased alpha- and beta-subunits protein levels, but decreased gamma-subunit protein levels in GABA(A) receptors. The present experiment provides evidence for the hypnotic effects as PA enhanced pentobarbital-induced sleeping behaviors via GABA(A)-ergic mechanisms in rodents. Taken together, it is proposed that PA may be useful for the treatment of sleep disturbed subjects with insomnia.
Administration, Oral
;
Animals
;
Blotting, Western
;
Cocos
;
gamma-Aminobutyric Acid
;
Hypnotics and Sedatives
;
Locomotion
;
Mice*
;
Muscimol
;
Neurons
;
Pentobarbital
;
Poria
;
Rats
;
Receptors, GABA-A
;
Rodentia
;
Sleep Initiation and Maintenance Disorders
7.Inactivation of the Medial Prefrontal Cortex Interferes with the Expression But Not the Acquisition of Differential Fear Conditioning in Rats.
Yeon Kyung LEE ; June Seek CHOI
Experimental Neurobiology 2012;21(1):23-29
The medial prefrontal cortex (mPFC) has been implicated in the processing of emotionally significant stimuli, particularly the inhibition of inappropriate responses. We examined the role of the mPFC in regulation of fear responses using a differential fear conditioning procedure in which the excitatory conditioned stimulus (CS+) was paired with an aversive footshock and intermixed with the inhibitory conditioned stimulus (CS-). In the first experiment, using rats as subjects, muscimol, a gamma-amino-butyric acid type A (GABAA) receptor agonist, or artificial cerebrospinal fluid (aCSF) was infused intracranially into the mPFC across three conditioning sessions. Twenty-four hours after the last conditioning session, freezing response of the rats was tested in a drug-free state. Neither the muscimol nor the aCSF infusion had any effect on differential responding. In the second experiment, the same experimental procedure was used except that the infusion was made before the testing session rather than the conditioning sessions. The results showed that muscimol infusion impaired differential responding: the level of freezing to CS- was indiscriminable from that to CS+. Taken together, these results suggest that the mPFC is responsible for the regulation of fear response by inhibiting inappropriate fear expressions.
Animals
;
Freezing
;
Muscimol
;
Prefrontal Cortex
;
Rats
8.Pharmacology of Intracisternal or Intrathecal Glycine, Muscimol, and Baclofen in Strychnine-induced Thermal Hyperalgesia of Mice.
Il Ok LEE ; Jin Kook SON ; Eui Sung LIM ; Yeon Soo KIM
Journal of Korean Medical Science 2011;26(10):1371-1377
Glycine and gamma-aminobutyric acid (GABA) are localized and released by the same interneurons in the spinal cord. Although the effects of glycine and GABA on analgesia are well known, little is known about the effect of GABA in strychnine-induced hyperalgesia. To investigate the effect of GABA and the role of the glycine receptor in thermal hyperalgesia, we designed an experiment involving the injection of muscimol (a GABAA receptor agonist), baclofen (a GABAB receptor agonist) or glycine with strychnine (strychnine sensitive glycine receptor antagonist). Glycine, muscimol, or baclofen with strychnine was injected into the cisterna magna or lumbar subarachnoidal spaces of mice. The effects of treatment on strychnine-induced heat hyperalgesia were observed using the pain threshold index via the hot plate test. The dosages of experimental drugs and strychnine we chose had no effects on motor behavior in conscious mice. Intracisternal or intrathecal administration of strychnine produced thermal hyperalgesia in mice. Glycine antagonize the effects of strychnine, whereas, muscimol or baclofen does not. Our results indicate that glycine has anti-thermal hyperalgesic properties in vivo; and GABA receptor agonists may lack the binding abilities of glycine receptor antagonists with their sites in the central nervous system.
Animals
;
Baclofen/*administration & dosage/pharmacology
;
Drug Delivery Systems
;
GABA Agonists/administration & dosage/pharmacology
;
GABA Antagonists/administration & dosage/pharmacology
;
Glycine/*administration & dosage/pharmacology
;
Hot Temperature
;
Hyperalgesia/chemically induced/*drug therapy
;
Injections, Spinal
;
Male
;
Mice
;
Mice, Inbred ICR
;
Muscimol/*administration & dosage/pharmacology
;
Pain Threshold
;
Random Allocation
;
Strychnine
;
gamma-Aminobutyric Acid/metabolism
9.The influence of GABAA receptor on the analgesic action of intrathecally injected oxysophoridine.
Guang YANG ; Jin-xian GAO ; Zheng-hong YI ; Lin YAN ; Yuan-Xu JIANG
Acta Pharmaceutica Sinica 2011;46(5):534-538
.This study is to investigate the analgesic effect produced by intrathecal injection (ith) of oxysophoridine (OSR) and the mechanism of GABAA receptor. Warm water tail-flick test was used to detect the analgesic effect of OSR (12.5, 6.25, and 3.13 mg.kg-1 ith) and to observe the influence of GABA (gamma aminobutyric acid) agonist or antagonist on the analgesic effect of OSR in mice. Immunohistochemistry method were used to detect the influence of OSR (12.5 mg.kg-1, ith) on the GABAARalpha1 protein expression in spinal cord. The results obtained covers that OSR (12.5 and 6.25 mg.kg-, ith) alleviates pain significantly with the warm water tail-flick test (P<0.05, P<0.01), the rate of pain threshold increases by 68.45%; GABA and muscimol (MUS) produces analgesic synergism together with the OSR, picrotoxin (PTX) and bicuculline (BIC) antagonize the analgesic effect of OSR; OSR (12.5 mg.kg-1, ith) significantly increase the positive number of GABAARalpha1 nerve cell in spinal cord (P<0.01) and significantly decrease the average grey levels (P<0.01). In conclusion, OSR intrathecal injection has significant analgesic effect. And GABAA receptor in spinal cord is involved in the analgesic mechanism.
Alkaloids
;
administration & dosage
;
pharmacology
;
Analgesics
;
administration & dosage
;
pharmacology
;
Animals
;
Bicuculline
;
pharmacology
;
Female
;
GABA-A Receptor Agonists
;
pharmacology
;
GABA-A Receptor Antagonists
;
pharmacology
;
Injections, Spinal
;
Male
;
Mice
;
Muscimol
;
pharmacology
;
Pain Threshold
;
drug effects
;
Picrotoxin
;
pharmacology
;
Random Allocation
;
Receptors, GABA-A
;
metabolism
;
Spinal Cord
;
metabolism
;
gamma-Aminobutyric Acid
;
pharmacology
10.Effect of intrathecal glycine and related amino acids on the allodynia and hyperalgesic action of strychnine or bicuculline in mice.
Korean Journal of Anesthesiology 2010;58(1):76-86
BACKGROUND: The intrathecal (IT) administration of glycine or GABAA receptor antagonist result in a touch evoked allodynia through disinhibition in the spinal cord. Glycine is an inhibitory neurotransmitter that appears to be important in sensory processing in the spinal cord. This study was aimed to evaluate the effect of glycine-related amino acids on antagonizing the effects of IT strychnine (STR) or bicuculline (BIC) when each amino acid was administered in combination with STR or BIC. METHODS: A total of 174 male ICR mice were randomized to receive an IT injection of equimolar dose of glycine, betaine, beta-alanine, or taurine in combination with STR or BIC. Agitation in response to innocuous stimulation with a von Frey filament after IT injection was assessed. The pain index in hot-plate test were observed after it injection. The effect of it muscimol in combination with str or bic were also observed. RESULTS: The allodynia induced by STR was relieved by high dose of glycine or betaine. But, allodynia induced by BIC was not relieved by any amino acid. Whereas the STR-induced thermal hyperalgesia was only relieved by high dose of taurine at 120 min after IT injection, the BIC-induced one was relieved by not only high dose of taurine at 120 min but also low dose of glycine or betaine at 60 min after IT injection. The BIC-induced allodynia and thermal hyperalgesia was relieved by IT muscimol. CONCLUSIONS: This study suggests that IT glycine and related amino acids can reduce the allodynic and hyperalgesic action of STR or BIC in mice.
Amino Acids
;
Animals
;
beta-Alanine
;
Betaine
;
Bicuculline
;
Dihydroergotamine
;
Glycine
;
Humans
;
Hyperalgesia
;
Male
;
Mice
;
Mice, Inbred ICR
;
Muscimol
;
Neurotransmitter Agents
;
Nitrogen Mustard Compounds
;
Spinal Cord
;
Strychnine
;
Taurine

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