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1.
Metab Brain Dis ; 37(4): 911-926, 2022 04.
Article in English | MEDLINE | ID: mdl-35059965

ABSTRACT

Allergic asthma is characterized by chronic airway inflammation and is constantly associated with anxiety disorder. Recent studies showed bidirectional interaction between the brain and the lung tissue. However, where and how the brain is affected in allergic asthma remains unclear. We aimed to investigate the neuroinflammatory, neurochemical, and neurometabolic alterations that lead to anxiety-like behavior in an experimental model of allergic asthma. Mice were submitted to an allergic asthma model induced by ovalbumin (OVA) and the control group received only Dulbecco's phosphate-buffered saline (DPBS). Our findings indicate that airway inflammation increases interleukin (IL) -9, IL-13, eotaxin, and IL-1ß release and changes acetylcholinesterase (AChE) and Na+,K+-ATPase activities in the brain of mice. Furthermore, we demonstrate that a higher reactive oxygen species (ROS) formation and antioxidant defense alteration that leads to protein damage and mitochondrial dysfunction. Therefore, airway inflammation promotes a pro-inflammatory environment with an increase of BDNF expression in the brain of allergic asthma mice. These pro-inflammatory environments lead to an increase in glucose uptake in the limbic regions and to anxiety-like behavior that was observed through the elevated plus maze (EPM) test and downregulation of glucocorticoid receptor (GR). In conclusion, the present study revealed for the first time that airway inflammation induces neuroinflammatory, neurochemical, and neurometabolic changes within the brain that leads to anxiety-like behavior. Knowledge about mechanisms that lead to anxiety phenotype in asthma is a beneficial tool that can be used for the complete management and treatment of the disease.


Subject(s)
Acetylcholinesterase , Asthma , Animals , Anxiety , Asthma/chemically induced , Disease Models, Animal , Inflammation/chemically induced , Inflammation/metabolism , Mice
2.
Front Psychiatry ; 12: 701408, 2021.
Article in English | MEDLINE | ID: mdl-34421682

ABSTRACT

Major depressive disorder (MDD) leads to pervasive changes in the health of afflicted patients. Despite advances in the understanding of MDD and its treatment, profound innovation is needed to develop fast-onset antidepressants with higher effectiveness. When acutely administered, the endogenous nucleoside guanosine (GUO) shows fast-onset antidepressant-like effects in several mouse models, including the olfactory bulbectomy (OBX) rodent model. OBX is advocated to possess translational value and be suitable to assess the time course of depressive-like behavior in rodents. This study aimed at investigating the long-term behavioral and neurochemical effects of GUO in a mouse model of depression induced by bilateral bulbectomy (OBX). Mice were submitted to OBX and, after 14 days of recovery, received daily (ip) administration of 7.5 mg/kg GUO or 40 mg/kg imipramine (IMI) for 45 days. GUO and IMI reversed the OBX-induced hyperlocomotion and recognition memory impairment, hippocampal BDNF increase, and redox imbalance (ROS, NO, and GSH levels). GUO also mitigated the OBX-induced hippocampal neuroinflammation (IL-1, IL-6, TNF-α, INF-γ, and IL-10). Brain microPET imaging ([18F]FDG) shows that GUO also prevented the OBX-induced increase in hippocampal FDG metabolism. These results provide additional evidence for GUO antidepressant-like effects, associated with beneficial neurochemical outcomes relevant to counteract depression.

3.
Toxicology ; 454: 152737, 2021 04 30.
Article in English | MEDLINE | ID: mdl-33631299

ABSTRACT

Ureases are microbial virulence factors either because of the enzymatic release of ammonia or due to many other non-enzymatic effects. Here we studied two neurotoxic urease isoforms, Canatoxin (CNTX) and Jack Bean Urease (JBU), produced by the plant Canavalia ensiformis, whose mechanisms of action remain elusive. The neurotoxins provoke convulsions in rodents (LD50 ∼2 mg/kg) and stimulate exocytosis in cell models, affecting intracellular calcium levels. Here, electrophysiological and brain imaging techniques were applied to elucidate their mode of action. While systemic administration of the toxins causes tonic-clonic seizures in rodents, JBU injected into rat hippocampus induced spike-wave discharges similar to absence-like seizures. JBU reduced the amplitude of compound action potential from mouse sciatic nerve in a tetrodotoxin-insensitive manner. Hippocampal slices from CNTX-injected animals or slices treated in vitro with JBU failed to induce long term potentiation upon tetanic stimulation. Rat cortical synaptosomes treated with JBU released L-glutamate. JBU increased the intracellular calcium levels and spontaneous firing rate in rat hippocampus neurons. MicroPET scans of CNTX-injected rats revealed increased [18]Fluoro-deoxyglucose uptake in epileptogenesis-related areas like hippocampus and thalamus. Curiously, CNTX did not affect voltage-gated sodium, calcium or potassium channels currents, neither did it interfere on cholinergic receptors, suggesting an indirect mode of action that could be related to the ureases' membrane-disturbing properties. Understanding the neurotoxic mode of action of C. ensiformis ureases could help to unveil the so far underappreciated relevance of these toxins in diseases caused by urease-producing microorganisms, in which the human central nervous system is affected.


Subject(s)
Canavalia/chemistry , Neurotoxicity Syndromes/etiology , Plant Proteins/toxicity , Toxins, Biological/toxicity , Urease/toxicity , Animals , Convulsants/isolation & purification , Convulsants/toxicity , Female , Male , Mice , Nervous System/drug effects , Nervous System/pathology , Neurotoxicity Syndromes/physiopathology , Plant Proteins/isolation & purification , Rats , Rats, Wistar , Toxins, Biological/isolation & purification , Urease/isolation & purification , Xenopus laevis
4.
J Neurochem ; 157(6): 1911-1929, 2021 06.
Article in English | MEDLINE | ID: mdl-33098090

ABSTRACT

Prenatal and early postnatal periods are important for brain development and neural function. Neonatal insults such as hypoxia-ischemia (HI) causes prolonged neural and metabolic dysregulation, affecting central nervous system maturation. There is evidence that brain hypometabolism could increase the risk of adult-onset neurodegenerative diseases. However, the impact of non-pharmacologic strategies to attenuate HI-induced brain glucose dysfunction is still underexplored. This study investigated the long-term effects of early environmental enrichment in metabolic, cell, and functional responses after neonatal HI. Thereby, male Wistar rats were divided according to surgical procedure, sham, and HI (performed at postnatal day 3), and the allocation to standard (SC) or enriched condition (EC) during gestation and lactation periods. In-vivo cerebral metabolism was assessed by means of [18 F]-FDG micro-positron emission tomography, and cognitive, biochemical, and histological analyses were performed in adulthood. Our findings reveal that HI causes a reduction in glucose metabolism and glucose transporter levels as well as hyposynchronicity in metabolic brain networks. However, EC during prenatal or early postnatal period attenuated these metabolic disturbances. A positive correlation was observed between [18 F]-FDG values and volume ratios in adulthood, indicating that preserved tissue by EC is metabolically active. EC promotes better cognitive scores, as well as down-regulation of amyloid precursor protein in the parietal cortex and hippocampus of HI animals. Furthermore, growth-associated protein 43 was up-regulated in the cortex of EC animals. Altogether, results presented support that EC during gestation and lactation period can reduce HI-induced impairments that may contribute to functional decline and progressive late neurodegeneration.


Subject(s)
Brain/metabolism , Environment , Hypoxia-Ischemia, Brain/metabolism , Hypoxia-Ischemia, Brain/prevention & control , Neuronal Plasticity/physiology , Prenatal Exposure Delayed Effects/metabolism , Animals , Animals, Newborn , Female , Hypoxia-Ischemia, Brain/psychology , Lactation/metabolism , Lactation/psychology , Male , Maze Learning/physiology , Neurodegenerative Diseases/metabolism , Neurodegenerative Diseases/prevention & control , Neurodegenerative Diseases/psychology , Positron-Emission Tomography/methods , Pregnancy , Prenatal Exposure Delayed Effects/psychology , Rats , Rats, Wistar
5.
Neurobiol Learn Mem ; 171: 107207, 2020 05.
Article in English | MEDLINE | ID: mdl-32147586

ABSTRACT

BACKGROUND AND PURPOSE: Hypoxia and cerebral ischemia (HI) events are capable of triggering important changes in brain metabolism, including glucose metabolism abnormalities, which may be related to the severity of the insult. Using positron emission microtomography (microPET) with [18F]fluorodeoxyglucose (18F-FDG), this study proposes to assess abnormalities of brain glucose metabolism in adult rats previously submitted to the neonatal HI model. We hypothesize that cerebral metabolic outcomes will be associated with cognitive deficits and magnitude of brain injury. METHODS: Seven-day-old rats were subjected to an HI model, induced by permanent occlusion of the right common carotid artery and systemic hypoxia. 18F-FDG-microPET was used to assess regional and whole brain glucose metabolism in rats at 60 postnatal days (PND 60). An interregional cross-correlation matrix was utilized to construct metabolic brain networks (MBN). Rats were also subjected to the Morris Water Maze (MWM) to evaluate spatial memory and their brains were processed for volumetric evaluation. RESULTS: Brain glucose metabolism changes were observed in adult rats after neonatal HI insult, limited to the right brain hemisphere. However, not all HI animals exhibited significant cerebral hypometabolism. Hippocampal glucose metabolism was used to stratify HI animals into HI hypometabolic (HI-h) and HI non-hypometabolic (HI non-h) groups. The HI-h group had drastic MBN disturbance, cognitive deficit, and brain tissue loss, concomitantly. Conversely, HI non-h rats had normal brain glucose metabolism and brain tissue preserved, but also presented MBN changes and spatial memory impairment. Furthermore, data showed that brain glucose metabolism correlated with cognitive deficits and brain volume outcomes. CONCLUSIONS: Our findings demonstrated that long-term changes in MBN drive memory impairments in adult rats subjected to neonatal hypoxic ischemia, using in vivo imaging microPET-FDG. The MBN analyses identified glucose metabolism abnormalities in HI non-h animals, which were not detected by conventional 18F-FDG standardized uptake value (SUVr) measurements. These animals exhibited a metabolic brain signature that may explain the cognitive deficit even with no identifiable brain damage.


Subject(s)
Brain/metabolism , Hypoxia-Ischemia, Brain/metabolism , Memory Disorders/metabolism , Nerve Net/metabolism , Animals , Brain/diagnostic imaging , Disease Models, Animal , Glucose/metabolism , Hypoxia-Ischemia, Brain/complications , Hypoxia-Ischemia, Brain/diagnostic imaging , Male , Memory Disorders/diagnostic imaging , Memory Disorders/etiology , Nerve Net/diagnostic imaging , Positron-Emission Tomography , Rats , Rats, Wistar
6.
Brain Struct Funct ; 224(8): 2857-2870, 2019 Nov.
Article in English | MEDLINE | ID: mdl-31440907

ABSTRACT

Imaging studies have shown abnormal amygdala function in patients with posttraumatic stress disorder (PTSD). In addition, alterations in synaptic plasticity have been associated with psychiatric disorders and previous reports have indicated alterations in the amygdala morphology, especially in basolateral (BLA) neurons, are associated with stress-related disorders. Since, some individuals exposed to a traumatic event develop PTSD, the goals of this study were to evaluate the early effects of PTSD on amygdala glucose metabolism and analyze the possible BLA dendritic spine plasticity in animals with different levels of behavioral response. We employed the inescapable footshock protocol as an experimental model of PTSD and the animals were classified according to the duration of their freezing behavior into distinct groups: "extreme behavioral response" (EBR) and "minimal behavioral response". We evaluated the amygdala glucose metabolism at baseline (before the stress protocol) and immediately after the situational reminder using the microPET and the radiopharmaceutical 18F-FDG. The BLA dendritic spines were analyzed according to their number, density, shape and morphometric parameters. Our results show the EBR animals exhibited longer freezing behavior and increased proximal dendritic spines density in the BLA neurons. Neither the amygdaloid glucose metabolism, the types of dendritic spines nor their morphometric parameters showed statistically significant differences. The extreme behavior response induced by this PTSD protocol produces an early increase in BLA spine density, which is unassociated with either additional changes in the shape of spines or metabolic changes in the whole amygdala of Wistar rats.


Subject(s)
Basolateral Nuclear Complex/physiopathology , Dendritic Spines/physiology , Stress Disorders, Post-Traumatic/physiopathology , Animals , Basolateral Nuclear Complex/metabolism , Basolateral Nuclear Complex/pathology , Dendritic Spines/pathology , Disease Models, Animal , Fluorodeoxyglucose F18 , Glucose/metabolism , Male , Positron-Emission Tomography , Rats, Wistar , Stress Disorders, Post-Traumatic/metabolism , Stress Disorders, Post-Traumatic/pathology
7.
Brain Res ; 1722: 146355, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31356782

ABSTRACT

Stress has been considered as a risk factor for the development and aggravation of several diseases. The hypothalamic-pituitary-adrenal axis (HPA) is one of the main actors for the stress response and homeostasis maintenance. Positron emission tomography (PET) has been used to evaluate neuronal activity and to study brain regions that may be related to the HPA axis response. Since neuroimaging is an important tool in detecting neuroendocrine-related changes, we used fluorodeoxyglucose-18 (18F-FDG) and positron emission microtomography (microPET) to evaluate sexual differences in the glucose brain metabolism after 10, 30 and 40 min of acute stress in Balb/c mice. We also investigated the effects of restraint stress in blood, liver and adrenal gland 18F-FDG biodistribution using a gamma counter. A decreased glucose uptake in the whole brain in both females and males was found. Additionally, there were time and sex-dependent alterations in the 18F-FDG uptake after restraint stress in specific brain regions, indicating that males could be more vulnerable to the short-term effects of acute stress. According to the gamma counter biodistribution, only females showed a significant decreased glucose uptake in the blood, liver and right adrenal after restraint stress. In addition, in comparisons between the sexes, males showed a decreased glucose uptake in the whole brain and in several brain regions compared to females. In conclusion, exposure to acute restraint stress resulted in significant decreased glucose metabolism in the brain, with particular effects in different regions and organs in a sex-specific manner.


Subject(s)
Brain/metabolism , Glucose/metabolism , Sex Characteristics , Stress, Psychological/metabolism , Animals , Female , Fluorodeoxyglucose F18 , Male , Mice, Inbred BALB C , Positron-Emission Tomography , Restraint, Physical
8.
Pain ; 160(6): 1383-1401, 2019 06.
Article in English | MEDLINE | ID: mdl-30720581

ABSTRACT

Generalized pain and fatigue are both hallmarks of fibromyalgia, a syndrome with an indefinite etiology. The treatment options for fibromyalgia are currently limited, probably because of its intricate pathophysiology. Thus, further basic and clinical research on this condition is currently needed. This study investigated the effects of nociceptin/orphanin FQ (N/OFQ) receptor (NOPr) ligands and the modulation of the NOP system in the preclinical mouse model of reserpine-induced fibromyalgia. The effects of administration of the natural agonist N/OFQ and the selective NOPr antagonists (UFP-101 and SB-612111) were evaluated in fibromyalgia-related symptoms in reserpine-treated mice. The expression of prepronociceptin/orphanin FQ and NOPr was assessed in central and peripheral sites at different time points after reserpine administration. Nociceptin/orphanin FQ displayed dual effects in the behavioral changes in the reserpine-elicited fibromyalgia model. The peptide NOPr antagonist UFP-101 produced analgesic and antifatigue effects, by preventing alterations in brain activity and skeletal muscle metabolism, secondary to fibromyalgia induction. The nonpeptide NOPr antagonist SB-612111 mirrored the favorable effects of UFP-101 in painful and fatigue alterations induced by reserpine. A time-related up- or downregulation of prepronociceptin/orphanin FQ and NOPr was observed in supraspinal, spinal, and peripheral sites of reserpine-treated mice. Our data shed new lights on the mechanisms underlying the fibromyalgia pathogenesis, supporting a role for N/OFQ-NOP receptor system in this syndrome.


Subject(s)
Analgesics/pharmacology , Fatigue/drug therapy , Fibromyalgia/drug therapy , Opioid Peptides/pharmacology , Animals , Disease Models, Animal , Female , Male , Mice , Narcotic Antagonists/pharmacology , Pain/drug therapy , Protein Precursors/pharmacology , Receptors, Opioid/drug effects , Nociceptin Receptor , Nociceptin
9.
Epilepsia ; 59(5): 923-934, 2018 05.
Article in English | MEDLINE | ID: mdl-29600825

ABSTRACT

OBJECTIVE: Temporal lobe epilepsy (TLE) is one of the most common types of epilepsy syndromes in the world. Depression is an important comorbidity of epilepsy, which has been reported in patients with TLE and in different experimental models of epilepsy. However, there is no established consensus on which brain regions are associated with the manifestation of depression in epilepsy. Here, we investigated the alterations in cerebral glucose metabolism and the metabolic network in the pilocarpine-induced rat model of epilepsy and correlated it with depressive behavior during the chronic phase of epilepsy. METHODS: Fluorodeoxyglucose (18 F-FDG) was used to investigate the cerebral metabolism, and a cross-correlation matrix was used to examine the metabolic network in chronically epileptic rats using micro-positron emission tomography (microPET) imaging. An experimental model of epilepsy was induced by pilocarpine injection (320 mg/kg, ip). Forced swim test (FST), sucrose preference test (SPT), and eating-related depression test (ERDT) were used to evaluate depression-like behavior. RESULTS: Our results show an association between epilepsy and depression comorbidity based on changes in both cerebral glucose metabolism and the functional metabolic network. In addition, we have identified a significant correlation between brain glucose hypometabolism and depressive-like behavior in chronically epileptic rats. Furthermore, we found that the epileptic depressed group presents a hypersynchronous brain metabolic network in relation to the epileptic nondepressed group. SIGNIFICANCE: This study revealed relevant alterations in glucose metabolism and the metabolic network among the brain regions of interest for both epilepsy and depression pathologies. Thus it seems that depression in epileptic animals is associated with a more diffuse hypometabolism and altered metabolic network architecture and plays an important role in chronic epilepsy.


Subject(s)
Brain/metabolism , Depression/etiology , Epilepsy/metabolism , Epilepsy/psychology , Glucose/metabolism , Animals , Brain/physiopathology , Comorbidity , Depression/metabolism , Epilepsy/physiopathology , Image Interpretation, Computer-Assisted , Male , Positron-Emission Tomography , Rats , Rats, Wistar
10.
CNS Neurosci Ther ; 21(5): 463-71, 2015 May.
Article in English | MEDLINE | ID: mdl-25645708

ABSTRACT

AIMS: In previous studies, transplantation of bone marrow mononuclear cells (BMMCs) in epileptic animals has been found to be neuroprotective. However, the mechanism by which the BMMCs act remains unclear. We hypothesize that BMMCs may provide neuroprotection to the epileptic brain through trophic support. To test our hypothesis, we studied the temporal expression of neurotrophins after BMMC transplantation in the epileptic rat hippocampus. METHODS: Chronically epileptic rats were intravenously transplanted with 1 × 10(7) BMMCs isolated from GFP transgenic mice. Expression levels of BDNF, GDNF, NGF, VEGF, and TGF-ß1, and their receptors, were evaluated by ELISA and/or qRT-PCR analysis. RESULTS: Our data revealed increased protein expression of BDNF, GDNF, NGF, and VEGF and reduced levels of TGF-ß1 in the hippocampus of transplanted epileptic animals. Additionally, an increase in the mRNA expression of BDNF, GDNF, and VEGF, a reduction in TGF-ß1, and a decrease in mRNA levels of the TrkA and TGFR-ß1 receptors were also observed. CONCLUSION: The gain provided by transplanted BMMCs in the epileptic brain may be related to the ability of these cells in modulating the network of neurotrophins and angiogenic signals.


Subject(s)
Bone Marrow Transplantation , Epilepsy/metabolism , Epilepsy/therapy , Hippocampus/metabolism , Intercellular Signaling Peptides and Proteins/metabolism , Animals , Bone Marrow Cells/metabolism , Chronic Disease , Disease Models, Animal , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Male , Mice, Inbred C57BL , Mice, Transgenic , Pilocarpine , Rats, Wistar
11.
Life Sci ; 89(7-8): 229-34, 2011 Aug 15.
Article in English | MEDLINE | ID: mdl-21718708

ABSTRACT

AIMS: Epilepsy affects 0.5-1% of the world's population, and approximately a third of these patients are refractory to current medication. Given their ability to proliferate, differentiate and regenerate tissues, stem cells could restore neural circuits lost during the course of the disease and reestablish the physiological excitability of neurons. This study verified the therapeutic potential of bone marrow mononuclear cells (BMMCs) on seizure control and cognitive impairment caused by experimentally induced epilepsy. MAIN METHODS: Status epilepticus (SE) was induced by lithium-pilocarpine injection and controlled with diazepam 90 min after SE onset. Lithium-pilocarpine-treated rats were intravenously transplanted 22 days after SE with BMMCs obtained from enhanced green fluorescent protein (eGFP) transgenic C57BL/6 mice. Control epileptic animals were given an equivalent volume of saline or fibroblast injections. Animals were video-monitored for the presence of spontaneous recurrent seizures prior to and following the cell administration procedure. In addition, rats underwent cognitive evaluation using a Morris water maze. KEY FINDINGS: Our data show that BMMCs reduced the frequency of seizures and improved the learning and long-term spatial memory impairments of epileptic rats. EGFP-positive cells were detected in the brains of transplanted animals by PCR analysis. SIGNIFICANCE: The positive behavioral effects observed in our study indicate that BMMCs could represent a promising therapeutic option in the management of chronic temporal lobe epilepsy.


Subject(s)
Cell Transplantation , Cognition Disorders/prevention & control , Epilepsy/therapy , Memory Disorders/prevention & control , Monocytes/cytology , Seizures/prevention & control , Animals , Bone Marrow Cells/cytology , Chronic Disease , Cognition Disorders/chemically induced , Diazepam/pharmacology , Disease Models, Animal , Epilepsy/complications , Lithium/pharmacology , Male , Maze Learning/drug effects , Memory Disorders/chemically induced , Mice , Mice, Inbred C57BL , Monocytes/transplantation , Pilocarpine/pharmacology , Rats , Rats, Wistar , Seizures/chemically induced , Swimming
12.
Neuroreport ; 16(16): 1869-73, 2005 Nov 07.
Article in English | MEDLINE | ID: mdl-16237345

ABSTRACT

We analyzed the effect of the acylpolyaminetoxin JSTX-3 on the epileptogenic discharges induced by perfusion of human hippocampal slices with artificial cerebrospinal fluid lacking Mg2+ or N-methyl-D-aspartate. Hippocampi were surgically removed from patients with refractory medial temporal lobe epilepsy, sliced in the surgical room and taken to the laboratory immersed in normal artificial cerebrospinal fluid. Epileptiform activity was induced by perfusion with Mg2+-free artificial cerebrospinal fluid or by iontophoretically applied N-methyl-D-aspartate and intracellular and field recordings of CA1 neurons were performed. The ictal-like discharges induced by Mg2+-free artificial cerebrospinal fluid and N-methyl-D-aspartate were blocked by incubation with JSTX-3. This effect was similar to that obtained with the N-methyl-D-aspartate receptor antagonist DL (-)2-amino-5 phosphonovaleric acid. Our findings suggest that in human hippocampal neurons, the antiepileptic effect of JSTX-3 is mediated by its action on N-methyl-D-aspartate receptor.


Subject(s)
Anticonvulsants/pharmacology , Heterocyclic Compounds/pharmacology , Hippocampus/pathology , Neurons/drug effects , Polyamines/pharmacology , Receptors, N-Methyl-D-Aspartate/physiology , 2-Amino-5-phosphonovalerate/pharmacology , Action Potentials/drug effects , Action Potentials/radiation effects , Adolescent , Adult , Child , Electrophysiology/methods , Epilepsy/surgery , Excitatory Amino Acid Agonists/pharmacology , Excitatory Amino Acid Antagonists/pharmacology , Female , Hippocampus/drug effects , Humans , In Vitro Techniques , Magnesium/pharmacology , Male , Middle Aged , N-Methylaspartate/pharmacology , Neurons/metabolism
13.
Brain Res ; 1048(1-2): 170-6, 2005 Jun 28.
Article in English | MEDLINE | ID: mdl-15913572

ABSTRACT

The Joro spider toxin (JSTX-3), derived from Nephila clavata, has been found to block glutamate excitatory activity. Epilepsy has been studied in vitro, mostly on rat hippocampus, through brain slices techniques. The aim of this study is to verify the effect of the JSTX-3 on the epileptiform activity induced by magnesium-free medium in rat CA1 hippocampal neurons. Experiments were performed on hippocampus slices of control and pilocarpine-treated Wistar rats, prepared and maintained in vitro. Epileptiform activity was induced through omission of magnesium from the artificial cerebrospinal fluid (0-Mg2+ ACSF) superfusate and iontophoretic application of N-methyl-D-aspartate (NMDA). Intracellular recordings were obtained from CA1 pyramidal neurons both of control and epileptic rats. Passive membrane properties were analyzed before and after perfusion with the 0-Mg2+ ACSF and the application of toxin JSTX-3. During the ictal-like activity, the toxin JSTX-3 was applied by pressure ejection, abolishing this activity. This effect was completely reversed during the washout period when the slices were formerly perfused with artificial cerebrospinal fluid (ACSF) and again with 0-Mg2+ ACSF. Our results suggest that the toxin JSTX-3 is a potent blocker of induced epileptiform activity.


Subject(s)
Anticonvulsants/pharmacology , Heterocyclic Compounds/pharmacology , Hippocampus/cytology , Neurons/drug effects , Polyamines/pharmacology , Action Potentials/drug effects , Animals , Animals, Newborn , Anticonvulsants/therapeutic use , Electric Stimulation , Epilepsy/chemically induced , Epilepsy/drug therapy , Epilepsy/physiopathology , Excitatory Amino Acid Agonists/pharmacology , Heterocyclic Compounds/therapeutic use , In Vitro Techniques , Magnesium/pharmacology , Male , N-Methylaspartate/pharmacology , N-Methylscopolamine , Neurons/physiology , Patch-Clamp Techniques/methods , Polyamines/therapeutic use , Rats , Rats, Wistar
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