1.Changes in metabotropic glutamate receptor 4 expression and the effects of L-2-amino-4-phosphonobutyrate in a rodent model of diffuse brain injury.
Hong-min BAI ; Wei-min WANG ; Tian-dong LI ; Zhou FEI
Chinese Journal of Traumatology 2004;7(4):233-238
OBJECTIVETo examine the changes in the expression of mGluR4 after diffuse brain injury (DBI) and to determine the role of its specific agonist L-2-amino-4-phosphonobutyrate (L-AP4) in vivo.
METHODSA total of 161 male SD rats were randomized into the following groups. Group A included normal control, sham-operated control and DBI group. DBI was produced according to Marmarou's diffuse head injury model. mRNA expression of mGluR4 was detected by hybridization in situ. Group B included DBI alone, DBI treated with normal saline and DBI treated with L-AP4. All DBI rats were trained in a series of performance tests, following which they were subjected to DBI. At 1 and 12 hours, animals were injected intraventricularly with L-AP4 (100 mmol/L, 10 microl) or normal saline. Motor and cognitive performances were tested at 1, 3, 7, 14 days after injury and the damaged neurons were also detected.
RESULTSThere was no significant difference between normal control group and sham-operated group in the expression of mGluR4 (P>0.05). The animals exposed to DBI showed significantly increased expression of mRNA of mGluR4 compared with the sham-operated animals 1 h after injury (P<0.05). At 6 hours, the evolution of neuronal expression of mGluR4 in the trauma alone group was relatively static. Compared with saline-treated control animals, rats treated with L-AP4 showed an effective result of decreased number of damaged neurons and better motor and cognitive performances.
CONCLUSIONSIncreased expression of mGluR4 is important in the pathophysiological process of DBI and its specific agonist L-AP4 can provide remarkable neuroprotection against DBI not only at the histopathological level but also in the motor and cognitive performance.
Aminobutyrates ; pharmacology ; Analysis of Variance ; Animals ; Brain Injuries ; metabolism ; Excitatory Amino Acid Agonists ; pharmacology ; Male ; Random Allocation ; Rats ; Rats, Sprague-Dawley ; Receptors, Metabotropic Glutamate ; drug effects ; metabolism
2.Microinjection of NMDA-type glutamate receptor agonist NMDA and antagonist D-AP-5 into the central nucleus of the amygdale alters water intake rather than food intake.
Junbao YAN ; Jianqun YAN ; Jinrong LI ; Ke CHEN ; Huiling SUN ; Yuan ZHANG ; Xiaolin ZHAO ; Bo SUN ; Shiru ZHAO ; Lin SONG ; Xiaojing WEI
Journal of Southern Medical University 2012;32(5):595-600
OBJECTIVETo investigate the role of N-Methyl-D-aspartic acid (NMDA)-type glutamate receptors in the central nucleus of the amygdale (CeA) in food and water intake.
METHODSMale Sprague-Dawley rats with stainless steel cannulae implanted unilaterally into the CeA were used. The prototypic NMDA receptor agonist NMDA, or the selective NMDA receptor antagonist D(-)-2-amino-5-phosphonopentanoic acid (D-AP-5) was microinjected into the CeA of satiated and euhydrated rats.
RESULTSIntra-CeA injection of 8.50, 17.00, or 34.00 nmol NMDA did not alter food intake but significantly increased water intake 0-1 h after the injection (F(3,32)=3.191, P=0.037) independent of food intake. Without affecting the food intake, injection of 6.34, 12.70, or 25.40 nmol D-AP-5 into the CeA significantly decreased water intake 0-1 h after the injection (F(3,28)=3.118, P=0.042) independent of food intake.
CONCLUSIONNMDA receptors in the CeA may participate in the control of water intake rather than food intake.
2-Amino-5-phosphonovalerate ; pharmacology ; Amygdala ; drug effects ; Animals ; Drinking ; drug effects ; Eating ; drug effects ; Excitatory Amino Acid Agonists ; pharmacology ; Excitatory Amino Acid Antagonists ; pharmacology ; Injections, Intraventricular ; Male ; N-Methylaspartate ; pharmacology ; Rats ; Rats, Sprague-Dawley ; Receptors, N-Methyl-D-Aspartate ; agonists ; antagonists & inhibitors
3.Effects of triiodothyronine on the learning and memory behaviors in neonatal mice following excitotoxic brain damage.
Gen-Feng WU ; Xiang-Ying HE ; Qi LI ; Jing XU ; Qun-Wen XIAO ; Zhi-Ye QI ; Kun LIANG
Chinese Journal of Contemporary Pediatrics 2010;12(4):284-286
OBJECTIVESome research has shown that learning and memory function impairments in rats with hypothyroidism are associated with triiodothyronine (T3) deficiency in neurons. This study aimed to investigate the effects of L-T3 administration on learning and memory behaviors in neonatal mice with excitotoxic brain damage.
METHODSSeventy-one 5-day-old ICR neonatal mice were randomly assigned to five groups: controls that received intracerebral and intraperitoneal injections of phosphate buffered saline (PBS) (n=14); a group that received intracerebral injections of ibotenic acid (IA) and intraperitoneal injection of PBS (n=14); 3 groups that received intracerebral injections of IA and intraperitoneal injection of L-T3 at 0.2, 0.5, and 1 microg/kg, respectively (n=14-15). Intraperitoneal injections were done 1, 24, 48, 72 and 96 hrs after intracerebral injections. Learning and memory functions were evaluated by the Y-maze discrimination learning test on postnatal days 33-34.
RESULTSThe learning and memory functions in the highest L-T3 dose group were significantly better than those in the IA, and the lower L-T3 dose groups, presenting with decreased number of trials to criterion[15.8 + or - 4.5 vs 21.3 + or - 6.3 (IA group), 20.5 + or - 6.0 (0.2 microg/kg L-T3 group) or 21.0 + or - 6.5 (0.5 microg/kg L-T3 group); P<0.05], and achieving a higher correct percentage [91.4+ or - 9.5% vs 79.3 + or - 10.0% (IA group), 77.9 + or - 14.2% (0.2 microg/kg L-T3 group) or 80.7 + or - 12.2% (0.5 microg/kg L-T3 group); P<0.05].
CONCLUSIONSHigh-dose L-T3 (1 microg/kg) may improve learning and memory functions in mice following excitotoxic brain damage.
Animals ; Animals, Newborn ; Brain ; drug effects ; Excitatory Amino Acid Agonists ; toxicity ; Female ; Ibotenic Acid ; toxicity ; Learning ; drug effects ; Male ; Maze Learning ; drug effects ; Memory ; drug effects ; Mice ; Mice, Inbred ICR ; Triiodothyronine ; pharmacology
4.Effects of iontophoretically applied substance P, calcitonin gene-related peptide on excitability of dorsal horn neurones in rats.
Joong Woo LEEM ; Young Seob GWAK ; Ek Ho LEE ; Seung Soo CHUNG ; Yun Suk KIM ; Taick Sang NAM
Yonsei Medical Journal 2001;42(1):74-83
Spontaneous pain, allodynia and hyperalgesia are well known phenomena following peripheral nerve or tissue injury, and it is speculated that secondary hyperalgesia and allodynia, are generally thought to depend on a hyperexcitability (sensitization) of neurons in the dorsal horn. It is supposed that the sensitization may be due to various actions of neurotransmitters (SP, CGRP, excitatory amino acids) released from the primary afferent fibers. In this study, we examined effects of the iontophoretically applied SP and CGRP on the response to EAA receptor agonists (NMDA and non-NMDA) in the WDR dorsal horn neurones and see if the effects of SP or CGRP mimic the characteristic response pattern known in various pain models. The main results are summarized as follows: 1) SP specifically potentiated NMDA response. 2) CGRP non-specifically potentiated both NMDA and AMPA responses. Potentiation of NMDA response, however, was significantly greater than that of AMPA response. 3) 50% of SP applied cells and 15.8% of CGRP applied cells showed reciprocal changes(potentiation of NMDA response and suppression of AMPA response). These results are generally consistent with the sensitization characteristics in diverse pain models and suggests that the modulatory effects of SP and CGRP on NMDA and non-NMDA (AMPA) response are, at least in part, contribute to the development of sensitization in various pain models.
Animal
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Calcitonin Gene-Related Peptide/pharmacology*
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Calcitonin Gene-Related Peptide/administration & dosage
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Excitatory Amino Acid Agonists/pharmacology*
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Iontophoresis
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Male
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N-Methylaspartate/pharmacology
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Rats
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Rats, Sprague-Dawley
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Spinal Cord/physiology
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Spinal Cord/drug effects*
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Substance P/pharmacology*
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Substance P/administration & dosage
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alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid/pharmacology
5.Anti-oxidative neuroprotection by estrogens in mouse cortical cultures.
Yeong Hee BAE ; Jee Yeon HWANG ; Yang Hee KIM ; Jae Young KOH
Journal of Korean Medical Science 2000;15(3):327-336
Estrogen replacement therapy in postmenopausal women may reduce the risk of Alzheimer's disease, possibly by ameliorating neuronal degeneration. In the present study, we examined the neuroprotective spectrum of estrogen against excitotoxicity, oxidative stress, and serum-deprivation-induced apoptosis of neurons in mouse cortical cultures. 17beta-estradiol as well as 17alpha-estradiol and estrone attenuated oxidative neuronal death induced by 24 hr exposure to 100 microM FeCl2, excitotoxic neuronal death induced by 24 hr of exposure to 30 microM N-methyl-D-aspartate (NMDA) and serum-deprivation induced neuronal apoptosis. Furthermore, estradiol attenuated neuronal death induced by Abeta25-35. However, all these neuroprotective effects were mediated by the anti-oxidative action of estrogens. When oxidative stress was blocked by an antioxidant trolox, estrogens did not show any additional protection. Addition of a specific estrogen receptor antagonist ICI182,780 did not reverse the protection offered by estrogens. These findings suggest that high concentrations of estrogen protect against various neuronal injuries mainly by its anti-oxidative effects as previously shown by Behl et al. Our results do not support the view that classical estrogen receptors mediate neuroprotection.
Amyloid beta-Protein/pharmacology
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Animal
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Antioxidants/pharmacology*
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Antioxidants/metabolism
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Apoptosis/drug effects*
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Cells, Cultured
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Chelating Agents/pharmacology
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Chromans/pharmacology
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Estradiol/pharmacology
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Estrogens/pharmacology*
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Estrogens/metabolism
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Estrone/pharmacology
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Ethylenediamines/pharmacology
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Excitatory Amino Acid Agonists/pharmacology
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Ferric Compounds/pharmacology
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Lactate Dehydrogenase/analysis
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Mice
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N-Methylaspartate/pharmacology
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Neurons/metabolism
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Neurons/drug effects*
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Neurons/cytology
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Organ of Corti/cytology
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Peptide Fragments/pharmacology
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Staurosporine/pharmacology
6.Anti-oxidative neuroprotection by estrogens in mouse cortical cultures.
Yeong Hee BAE ; Jee Yeon HWANG ; Yang Hee KIM ; Jae Young KOH
Journal of Korean Medical Science 2000;15(3):327-336
Estrogen replacement therapy in postmenopausal women may reduce the risk of Alzheimer's disease, possibly by ameliorating neuronal degeneration. In the present study, we examined the neuroprotective spectrum of estrogen against excitotoxicity, oxidative stress, and serum-deprivation-induced apoptosis of neurons in mouse cortical cultures. 17beta-estradiol as well as 17alpha-estradiol and estrone attenuated oxidative neuronal death induced by 24 hr exposure to 100 microM FeCl2, excitotoxic neuronal death induced by 24 hr of exposure to 30 microM N-methyl-D-aspartate (NMDA) and serum-deprivation induced neuronal apoptosis. Furthermore, estradiol attenuated neuronal death induced by Abeta25-35. However, all these neuroprotective effects were mediated by the anti-oxidative action of estrogens. When oxidative stress was blocked by an antioxidant trolox, estrogens did not show any additional protection. Addition of a specific estrogen receptor antagonist ICI182,780 did not reverse the protection offered by estrogens. These findings suggest that high concentrations of estrogen protect against various neuronal injuries mainly by its anti-oxidative effects as previously shown by Behl et al. Our results do not support the view that classical estrogen receptors mediate neuroprotection.
Amyloid beta-Protein/pharmacology
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Animal
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Antioxidants/pharmacology*
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Antioxidants/metabolism
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Apoptosis/drug effects*
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Cells, Cultured
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Chelating Agents/pharmacology
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Chromans/pharmacology
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Estradiol/pharmacology
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Estrogens/pharmacology*
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Estrogens/metabolism
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Estrone/pharmacology
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Ethylenediamines/pharmacology
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Excitatory Amino Acid Agonists/pharmacology
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Ferric Compounds/pharmacology
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Lactate Dehydrogenase/analysis
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Mice
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N-Methylaspartate/pharmacology
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Neurons/metabolism
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Neurons/drug effects*
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Neurons/cytology
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Organ of Corti/cytology
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Peptide Fragments/pharmacology
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Staurosporine/pharmacology
7.Neurotoxicity Screening in a Multipotent Neural Stem Cell Line Established from the Mouse Brain.
Yong Soo CHOI ; Min Cheol LEE ; Hyung Seok KIM ; Kyung Hwa LEE ; Yeoung Geol PARK ; Hyun Kyung KIM ; Han Seong JEONG ; Myeong Kyu KIM ; Young Jong WOO ; Seung Up KIM ; Jae Kyu RYU ; Hyun Beom CHOI
Journal of Korean Medical Science 2010;25(3):440-448
Neural stem cells (NSCs) have mainly been applied to neurodegeneration in some medically intractable neurologic diseases. In this study, we established a novel NSC line and investigated the cytotoxic responses of NSCs to exogenous neurotoxicants, glutamates and reactive oxygen species (ROS). A multipotent NSC line, B2A1 cells, was established from long-term primary cultures of oligodendrocyte-enriched cells from an adult BALB/c mouse brain. B2A1 cells could be differentiated into neuronal, astrocytic and oligodendroglial lineages. The cells also expressed genotypic mRNA messages for both neural progenitor cells and differentiated neuronoglial cells. B2A1 cells treated with hydrogen peroxide and L-buthionine-(S,R)-sulfoximine underwent 30-40% cell death, while B2A1 cells treated with glutamate and kainate showed 25-35% cell death. Cytopathologic changes consisting of swollen cell bodies, loss of cytoplasmic processes, and nuclear chromatin disintegration, developed after exposure to both ROS and excitotoxic chemicals. These results suggest that B2A1 cells may be useful in the study of NSC biology and may constitute an effective neurotoxicity screening system for ROS and excitotoxic chemicals.
Animals
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Brain/*cytology
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Buthionine Sulfoximine/pharmacology
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Cell Differentiation
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Cell Line
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Cell Lineage
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Cytokines/pharmacology
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Enzyme Inhibitors/pharmacology
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Excitatory Amino Acid Agonists/pharmacology
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Glutamic Acid/pharmacology
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Humans
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Hydrogen Peroxide/pharmacology
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Intercellular Signaling Peptides and Proteins/pharmacology
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Kainic Acid/pharmacology
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Mice
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Mice, Inbred BALB C
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Multipotent Stem Cells/cytology/*drug effects/physiology
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Neuroglia/cytology/drug effects/physiology
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Neurons/cytology/*drug effects/physiology
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Neurotoxins/*pharmacology
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Oxidants/pharmacology
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Phenotype
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Reactive Oxygen Species/metabolism
8.Spinal CCL2 Promotes Central Sensitization, Long-Term Potentiation, and Inflammatory Pain via CCR2: Further Insights into Molecular, Synaptic, and Cellular Mechanisms.
Rou-Gang XIE ; Yong-Jing GAO ; Chul-Kyu PARK ; Ning LU ; Ceng LUO ; Wen-Ting WANG ; Sheng-Xi WU ; Ru-Rong JI
Neuroscience Bulletin 2018;34(1):13-21
Mounting evidence supports an important role of chemokines, produced by spinal cord astrocytes, in promoting central sensitization and chronic pain. In particular, CCL2 (C-C motif chemokine ligand 2) has been shown to enhance N-methyl-D-aspartate (NMDA)-induced currents in spinal outer lamina II (IIo) neurons. However, the exact molecular, synaptic, and cellular mechanisms by which CCL2 modulates central sensitization are still unclear. We found that spinal injection of the CCR2 antagonist RS504393 attenuated CCL2- and inflammation-induced hyperalgesia. Single-cell RT-PCR revealed CCR2 expression in excitatory vesicular glutamate transporter subtype 2-positive (VGLUT2) neurons. CCL2 increased NMDA-induced currents in CCR2/VGLUT2 neurons in lamina IIo; it also enhanced the synaptic NMDA currents evoked by dorsal root stimulation; and furthermore, it increased the total and synaptic NMDA currents in somatostatin-expressing excitatory neurons. Finally, intrathecal RS504393 reversed the long-term potentiation evoked in the spinal cord by C-fiber stimulation. Our findings suggest that CCL2 directly modulates synaptic plasticity in CCR2-expressing excitatory neurons in spinal lamina IIo, and this underlies the generation of central sensitization in pathological pain.
Animals
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Benzoxazines
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pharmacology
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therapeutic use
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Chemokine CCL2
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antagonists & inhibitors
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genetics
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metabolism
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pharmacology
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Excitatory Amino Acid Agents
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pharmacology
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Excitatory Amino Acid Agonists
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pharmacology
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Female
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Freund's Adjuvant
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toxicity
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Hyperalgesia
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chemically induced
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metabolism
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prevention & control
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Long-Term Potentiation
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drug effects
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physiology
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Luminescent Proteins
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genetics
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metabolism
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Male
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Mice
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Mice, Inbred C57BL
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Mice, Transgenic
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Myelitis
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chemically induced
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drug therapy
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metabolism
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Neurons
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drug effects
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Pain Management
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Somatostatin
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genetics
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metabolism
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Spinal Cord
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cytology
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Spiro Compounds
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pharmacology
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therapeutic use
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Vesicular Glutamate Transport Protein 2
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genetics
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metabolism
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Vesicular Inhibitory Amino Acid Transport Proteins
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genetics
;
metabolism
9.Activation of hippocampal D1 dopamine receptor inhibits glutamate-mediated depression induced by chronic unpredictable mild stress in rats.
Ting-Ting YUAN ; Hui QIAO ; Su-Ping DONG ; Shu-Cheng AN
Acta Physiologica Sinica 2011;63(4):333-341
The present study was to investigate the role of dopamine D1 receptors and its relationship with glutamate, N-methyl-D-aspartic acid (NMDA) receptor and α-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA) receptor in depression induced by chronic unpredictable mild stress (CUMS). CUMS-induced depression model was established in Sprague-Dawley rats, and intrahippocampal microinjections of D1 dopamine receptor agonist SKF38393, non-competitive NMDA receptor antagonist MK-801 and AMPA receptor antagonist NBQX were respectively adopted by rat brain stereotaxic coordinates. The behavioral observations were conducted by measurement of weight changes, sucrose preference test, open-field test and tail suspension test. The concentration of glutamic acid and the expression of its receptors' subunits were detected by HPLC and Western blot, respectively. The results showed that, compared with control group, CUMS rats showed depression-like behavioral changes, higher concentration of glutamic acid, lower expressions of NMDA receptor (NR1) and AMPA receptor (GluR2/3) in hippocampus. Pretreatment with injection of SKF38393 could rescue such depression effect of CUMS, decrease the concentration of glutamic acid, and increase the expressions of NMDA receptor (NR1), AMPA receptor (GluR2/3) in hippocampus. Pretreatment with MK-801 could enhance the antidepressant effect of SKF38393, while NBQX weakened. These results suggest that agonists of D1 dopamine receptor could reduce the concentration of glutamic acid in hippocampus, and its antidepressant effect may be mediated by AMPA receptor partially.
2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-benzazepine
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pharmacology
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Animals
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Depression
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etiology
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physiopathology
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Dizocilpine Maleate
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pharmacology
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Excitatory Amino Acid Antagonists
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Glutamates
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metabolism
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Hippocampus
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metabolism
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Male
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Rats
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Rats, Sprague-Dawley
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Receptors, AMPA
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metabolism
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Receptors, Dopamine D1
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agonists
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physiology
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Stress, Physiological
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physiology
10.Protective effect of maternal immunoglobulin G against NMDA-induced neurotoxicity on hippocampus neurons.
Hong-mei WANG ; Li-ping ZOU ; Wei-hua ZHANG ; Min ZENG ; Chun-li ZHAO ; Jun-yan ZHANG
Chinese Journal of Pediatrics 2006;44(5):374-376
OBJECTIVETo investigate possible protective effect of maternal immunoglobulin G (IgG) against N-methyl-D-aspartate-mediated neurotoxicity on primary-cultured rat hippocampal neurons and the mechanism of the effect.
METHODSAn in vitro system had been developed for the study of hippocampal neurons. Intracellular lactic dehydrogenase (LDH) release was used as a marker to measure the rates of neuronal damage. The cells were stained with Trypan blue to measure the rate of neuronal death.
RESULTSN-methyl-D-aspartate (NMDA) at a concentration of 50 micromol/L resulted in increased release of LDH and the cell mortality (P < 0.01, respectively). Maternal IgG of different concentration (10 mg/L, 100 mg/L) inhibited NMDA-induced intracellular LDH release (P < 0.01, respectively) and cell mortality (P < 0.05, 0.01, respectively), and larger dose had stronger effect (P < 0.05).
CONCLUSIONSMaternal IgG had protective effect on primary-cultured rat hippocampal neurons injured by NMDA and the effect was dose-dependent.
Animals ; Animals, Newborn ; Cell Death ; drug effects ; Cell Survival ; drug effects ; Cells, Cultured ; Excitatory Amino Acid Agonists ; Female ; Hippocampus ; cytology ; drug effects ; metabolism ; pathology ; Immunity, Maternally-Acquired ; immunology ; Immunoglobulin G ; biosynthesis ; isolation & purification ; pharmacology ; Immunologic Factors ; biosynthesis ; isolation & purification ; pharmacology ; L-Lactate Dehydrogenase ; analysis ; biosynthesis ; Male ; N-Methylaspartate ; Neurons ; drug effects ; metabolism ; pathology ; Organ Culture Techniques ; Pregnancy ; Rats ; Rats, Wistar