Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 193
Filter
Add more filters

Publication year range
1.
J Toxicol Environ Health A ; 87(4): 166-184, 2024 Feb 16.
Article in English | MEDLINE | ID: mdl-38073470

ABSTRACT

Copper (Cu) is a naturally occurring metal with essential micronutrient properties. However, this metal might also pose increased adverse environmental and health risks due to industrial and agricultural activities. In Brazil, the maximum allowable concentration of Cu in drinking water is 2 mg/L. Despite this standard, the impact of such concentrations on aquatic organisms remains unexplored. This study aimed to evaluate the toxicity of CuSO4 using larval zebrafish at environmentally relevant concentrations. Zebrafish (Danio rerio) larvae at 72 hr post-fertilization (hpf) were exposed to nominal CuSO4 concentrations ranging from 0.16 to 48 mg/L to determine the median lethal concentration (LC50), established at 8.4 mg/L. Subsequently, non-lethal concentrations of 0.16, 0.32, or 1.6 mg/L were selected for assessing CuSO4 -induced toxicity. Morphological parameters, including body length, yolk sac area, and swim bladder area, were adversely affected by CuSO4 exposure, particularly at 1.6 mg/L (3.31 mm ±0.1, 0.192 mm2 ±0.01, and 0.01 mm2 ±0.05, respectively). In contrast, the control group exhibited values of 3.62 mm ±0.09, 0.136 mm2 ±0.013, and 0.3 mm2 ±0.06, respectively. Behavioral assays demonstrated impairments in escape response and swimming capacity, accompanied by increased levels of reactive oxygen species (ROS) and lipid peroxidation. In addition, decreased levels of non-protein thiols and reduced cellular viability were noted. Data demonstrated that exposure to CuSO4 at similar concentrations as those permitted in Brazil for Cu adversely altered morphological, biochemical, and behavioral endpoints in zebrafish larvae. This study suggests that the permissible Cu concentrations in Brazil need to be reevaluated, given the potential enhanced adverse health risks of exposure to environmental metal contamination.


Subject(s)
Copper , Water Pollutants, Chemical , Animals , Copper/toxicity , Zebrafish/physiology , Larva , Brazil , Lethal Dose 50 , Water Pollutants, Chemical/toxicity , Embryo, Nonmammalian
2.
Ecotoxicol Environ Saf ; 279: 116481, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38788562

ABSTRACT

Manganese (Mn) overexposure has been associated with the development of neurological damage reminiscent of Parkinson's disease, while the underlying mechanisms have yet to be fully characterized. This study aimed to investigate the mechanisms leading to injury in dopaminergic neurons induced by Mn and identify novel treatment approaches. In the in vivo and in vitro models, ICR mice and dopaminergic neuron-like PC12 cells were exposed to Mn, respectively. We treated them with anti-ferroptotic agents ferrostatin-1 (Fer-1), deferoxamine (DFO), HIF-1α activator dimethyloxalylglycine (DMOG) and inhibitor LW6. We also used p53-siRNA to verify the mechanism underlying Mn-induced neurotoxicity. Fe and Mn concentrations increased in ICR mice brains overexposed to Mn. Additionally, Mn-exposed mice exhibited movement impairment and encephalic pathological changes, with decreased HIF-1α, SLC7A11, and GPX4 proteins and increased p53 protein levels. Fer-1 exhibited protective effects against Mn-induced both behavioral and biochemical changes. Consistently, in vitro, Mn exposure caused ferroptosis-related changes and decreased HIF-1α levels, all ameliorated by Fer-1. Upregulation of HIF-1α by DMOG alleviated the Mn-associated ferroptosis, while LW6 exacerbated Mn-induced neurotoxicity through downregulating HIF-1α. p53 knock-down also rescued Mn-induced ferroptosis without altering HIF-1α protein expression. Mn overexposure resulted in ferroptosis in dopaminergic neurons, mediated through the HIF-1α/p53/SLC7A11 pathway.


Subject(s)
Amino Acid Transport System y+ , Brain , Ferroptosis , Hypoxia-Inducible Factor 1, alpha Subunit , Manganese , Mice, Inbred ICR , Tumor Suppressor Protein p53 , Animals , Ferroptosis/drug effects , PC12 Cells , Hypoxia-Inducible Factor 1, alpha Subunit/metabolism , Hypoxia-Inducible Factor 1, alpha Subunit/genetics , Mice , Tumor Suppressor Protein p53/metabolism , Tumor Suppressor Protein p53/genetics , Manganese/toxicity , Brain/drug effects , Amino Acid Transport System y+/metabolism , Amino Acid Transport System y+/genetics , Rats , Male , Dopaminergic Neurons/drug effects , Dopaminergic Neurons/pathology , Cyclohexylamines/pharmacology , Phenylenediamines/toxicity , Phenylenediamines/pharmacology , Deferoxamine/pharmacology , Phospholipid Hydroperoxide Glutathione Peroxidase/metabolism , Amino Acids, Dicarboxylic
3.
Toxicol Mech Methods ; 34(1): 1-12, 2024 Jan.
Article in English | MEDLINE | ID: mdl-37731353

ABSTRACT

Mercury is a ubiquitous environmental contaminant and can be found in inorganic (Hg0, Hg+ and Hg2+) and organic forms (chiefly CH3Hg+ or MeHg+). The main route of human, mammals and bird exposure occurs via predatory fish ingestion. Occupational exposure to Hg0 (and Hg2+) can also occur; furthermore, in gold mining areas the exposure to inorganic Hg can also be high. The toxicity of electrophilic forms of Hg (E+Hg) is mediated by disruption of thiol (-SH)- or selenol (-SeH)-containing proteins. The therapeutic approaches to treat methylmercury (MeHg+), Hg0 and Hg2+ are limited. Here we discuss the potential use of ebselen as a potential therapeutic agent to lower the body burden of Hg in man. Ebselen is a safe drug for humans and has been tested in clinical trials (for instance, brain ischemia, noise-induce hearing loss, diabetes complications, bipolar disorders) at doses varying from 400 to 3600 mg per day. Two clinical trials with ebselen in moderate and severe COVID are also approved. Ebselen can be metabolized to an intermediate with -SeH (selenol) functional group, which has a greater affinity to electrophilic Hg (E+Hg) forms than the available thiol-containing therapeutic agents. Accordingly, as observed in vitro and rodent models in vivo, Ebselen exhibited protective effects against MeHg+, indicating its potential as a therapeutic agent to treat MeHg+ overexposure. The combined use of ebselen with thiol-containing molecules (e.g. N-acetylcysteine and enaramide)) is also commented, because they can have synergistic protective effects against MeHg+.


Subject(s)
Mercury , Methylmercury Compounds , Animals , Humans , Mercury/toxicity , Methylmercury Compounds/toxicity , Methylmercury Compounds/metabolism , Azoles/therapeutic use , Sulfhydryl Compounds , Mammals/metabolism
4.
Int J Mol Sci ; 24(3)2023 Feb 02.
Article in English | MEDLINE | ID: mdl-36769233

ABSTRACT

Neuron-glia interactions are essential for the central nervous system's homeostasis. Microglial cells are one of the key support cells in the brain that respond to disruptions in such homeostasis. Although their participation in neuroinflammation is well known, studies investigating their role in ferroptosis, an iron-dependent form of nonapoptotic cell death, are lacking. To address this issue, we explored whether microglial (BV-2 cells) activation products can intensify, mitigate or block oxidative and/or ferroptotic damage in neuronal cells (HT22 cell line). Cultured BV-2 microglial cells were stimulated with 5-100 ng/mL lipopolysaccharide (LPS) for 24 h and, after confirmation of microglial activation, their culture medium (conditioned media; CM) was transferred to neuronal cells, which was subsequently (6 h later) exposed to glutamate or tert-butyl hydroperoxide (t-BuOOH). As a major finding, HT22 cells pretreated for 6 h with CM exhibited a significant ferroptosis-resistant phenotype characterized by decreased sensitivity to glutamate (15 mM)-induced cytotoxicity. However, no significant protective effects of LPS-activated microglial cell-derived CM were observed in t-BuOOH (30 µM)-challenged cells. In summary, activated microglia-derived molecules may protect neuronal cells against ferroptosis. The phenomenon observed in this work highlights the beneficial relationship between microglia and neurons, highlighting new possibilities for the control of ferroptosis.


Subject(s)
Ferroptosis , Microglia , Microglia/metabolism , Culture Media, Conditioned/pharmacology , Culture Media, Conditioned/metabolism , Lipopolysaccharides/toxicity , Lipopolysaccharides/metabolism , Glutamic Acid/toxicity , Glutamic Acid/metabolism , Cells, Cultured , Neurons/metabolism
5.
Arch Toxicol ; 96(9): 2391-2417, 2022 09.
Article in English | MEDLINE | ID: mdl-35727353

ABSTRACT

Ferroptosis is a recently discovered form of regulated cell death, implicated in multiple pathologies. Given that the toxicity elicited by some metals is linked to alterations in iron metabolism and induction of oxidative stress and lipid peroxidation, ferroptosis might be involved in such toxicity. Although direct evidence is insufficient, certain pioneering studies have demonstrated a crosstalk between metal toxicity and ferroptosis. Specifically, the mechanisms underlying metal-induced ferroptosis include induction of ferritinophagy, increased DMT-1 and TfR cellular iron uptake, mitochondrial dysfunction and mitochondrial reactive oxygen species (mitoROS) generation, inhibition of Xc-system and glutathione peroxidase 4 (GPX4) activity, altogether resulting in oxidative stress and lipid peroxidation. In addition, there is direct evidence of the role of ferroptosis in the toxicity of arsenic, cadmium, zinc, manganese, copper, and aluminum exposure. In contrast, findings on the impact of cobalt and nickel on ferroptosis are scant and nearly lacking altogether for mercury and especially lead. Other gaps in the field include limited studies on the role of metal speciation in ferroptosis and the critical cellular targets. Although further detailed studies are required, it seems reasonable to propose even at this early stage that ferroptosis may play a significant role in metal toxicity, and its modulation may be considered as a potential therapeutic tool for the amelioration of metal toxicity.


Subject(s)
Ferroptosis , Antioxidants/pharmacology , Iron/metabolism , Lipid Peroxidation , Oxidative Stress , Reactive Oxygen Species/metabolism
6.
Neurochem Res ; 46(1): 120-130, 2021 Jan.
Article in English | MEDLINE | ID: mdl-32285377

ABSTRACT

Most pharmacological studies concerning the beneficial effects of organoselenium compounds have focused on their ability to mimic glutathione peroxidase (GPx). However, mechanisms other than GPx-like activity might be involved on their biological effects. This study was aimed to investigate and compare the protective effects of two well known [(PhSe)2 and PhSeZnCl] and two newly developed (MRK Picolyl and MRK Ester) organoselenium compounds against oxidative challenge in cultured neuronal HT22 cells. The thiol peroxidase and oxidase activities were performed using the glutathione reductase (GR)-coupled assay. In order to evaluate protective effects of the organoselenium compounds against oxidative challenge in neuronal HT22 cells, experiments based on glutamate-induced oxytosis and SIN-1-mediated peroxynitrite generation were performed. The thiol peroxidase activities of the studied organoselenium compounds were smaller than bovine erythrocytes GPx enzyme. Besides, (PhSe)2 and PhSeZnCl showed higher thiol peroxidase and lower thiol oxidase activities compared to the new compounds. MRK Picolyl and MRK Ester, which showed lower thiol peroxidase activity, showed higher thiol oxidase activity. Both pre- or co-treatment with (PhSe)2, PhSeZnCl, MRK Picolyl and MRK Ester protected HT22 cells against glutamate-induced cytotoxicity. (PhSe)2 and MRK Picolyl significantly prevented peroxinitrite-induced dihydrorhodamine oxidation, but this effect was observed only when HT22 were pre-treated with these compounds. The treatment with (PhSe)2 increased the protein expression of antioxidant defences (Prx3, CAT and GCLC) in HT22 cells. Taking together, our results suggest that the biological effects elicited by these compounds are not directly related to their GPx-mimetic and thiol oxidase activities, but might be linked to the up-regulation of endogenous antioxidant defences trough their thiol-modifier effects.


Subject(s)
Antioxidants/pharmacology , Neurons/drug effects , Organoselenium Compounds/pharmacology , Oxidative Stress/drug effects , Animals , Catalase/metabolism , Cattle , Cell Line , Glutamate-Cysteine Ligase/metabolism , Glutathione Peroxidase/metabolism , Homeodomain Proteins/metabolism , Mice
7.
Molecules ; 26(16)2021 Aug 18.
Article in English | MEDLINE | ID: mdl-34443584

ABSTRACT

Ischemic stroke, characterized by the sudden loss of blood flow in specific area(s) of the brain, is the leading cause of permanent disability and is among the leading causes of death worldwide. The only approved pharmacological treatment for acute ischemic stroke (intravenous thrombolysis with recombinant tissue plasminogen activator) has significant clinical limitations and does not consider the complex set of events taking place after the onset of ischemic stroke (ischemic cascade), which is characterized by significant pro-oxidative events. The transcription factor Nuclear factor erythroid 2-related factor 2 (Nrf2), which regulates the expression of a great number of antioxidant and/or defense proteins, has been pointed as a potential pharmacological target involved in the mitigation of deleterious oxidative events taking place at the ischemic cascade. This review summarizes studies concerning the protective role of Nrf2 in experimental models of ischemic stroke, emphasizing molecular events resulting from ischemic stroke that are, in parallel, modulated by Nrf2. Considering the acute nature of ischemic stroke, we discuss the challenges in using a putative pharmacological strategy (Nrf2 activator) that relies upon transcription, translation and metabolically active cells in treating ischemic stroke patients.


Subject(s)
Ischemic Stroke/metabolism , NF-E2-Related Factor 2/metabolism , Animals , Humans , Ischemic Stroke/drug therapy , Ischemic Stroke/genetics
8.
Chem Res Toxicol ; 32(8): 1459-1461, 2019 08 19.
Article in English | MEDLINE | ID: mdl-31124669

ABSTRACT

The methylation of mercuric mercury (Hg2+) in the aquatic sediments produces methylmercury (CH3Hg+), which is biomagnified along the food chain. The ingestion of piscivorous fish or aquatic mammals by pregnant women is of concern because it can cause long-lasting neurobehavioral deficits in their offspring.


Subject(s)
Food Contamination/analysis , Methylmercury Compounds/analysis , Water Pollutants, Chemical/analysis , Animals , Environmental Monitoring , Humans , Methylmercury Compounds/adverse effects , Methylmercury Compounds/toxicity , Water Pollutants, Chemical/adverse effects , Water Pollutants, Chemical/toxicity
9.
Mol Biol Rep ; 46(1): 751-762, 2019 Feb.
Article in English | MEDLINE | ID: mdl-30511305

ABSTRACT

Selenium (Se) is an essential trace element for humans; its intake is needed to allow the proper synthesis of 25 different selenoproteins that are necessary to the normal functioning of several organs, including the brain. Accordingly, decreased Se levels have been associated with neurological disorders. In the present study, we investigated the potential beneficial effects of Se, as sodium selenite, against 3-nitropropionic acid (3-NP)-induced oxidative stress in primary cultures of mouse cortical neurons. 3-NP treatment caused a significant decrease in cellular viability, which was accompanied by decreases in mitochondrial complex II activity and reduced glutathione (GSH) content, as well as increases in reactive oxygen species (ROS) generation and oxidized glutathione (GSSG) levels. Sodium selenite pretreatment (6 days) attenuated 3-NP-induced decrease in cell viability. In addition, sodium selenite pretreatment significantly protected against 3-NP-induced increase in ROS generation and decrease in GSH/GSSG ratio. Of note, sodium selenite pretreatment did not change 3-NP-induced decrease of mitochondrial complex II activity, suggesting that Se modulates secondary events resultant from 3-NP-induced mitochondrial dyshomeostasis. In addition, sodium selenite pretreatment significantly increased glutathione peroxidase (GPx) activity. Our data provide insights into the mechanism of protection by sodium selenite, which is related, at least in part, to GPx induction.


Subject(s)
Cerebral Cortex/pathology , Neurons/pathology , Neuroprotective Agents/pharmacology , Nitro Compounds/toxicity , Oxidative Stress/drug effects , Propionates/toxicity , Sodium Selenite/pharmacology , Animals , Cell Death/drug effects , Cell Survival/drug effects , Cells, Cultured , Glutathione Peroxidase/metabolism , MAP Kinase Signaling System/drug effects , Mice , Neurons/drug effects , Neurons/metabolism , Phosphorylation/drug effects
10.
Neurochem Res ; 43(3): 745-759, 2018 Mar.
Article in English | MEDLINE | ID: mdl-29362970

ABSTRACT

Systemic inflammation triggered by lipopolysaccharide (LPS) administration disrupts blood-brain barrier (BBB) homeostasis in animal models. This event leads to increased susceptibility of several encephalic structures to potential neurotoxicants present in the bloodstream. In this study, we investigated the effects of alternate intraperitoneal injections of LPS on BBB permeability, social recognition memory and biochemical parameters in the striatum 24 h and 60 days after treatments. In addition, we investigated whether the exposure to a moderate neurotoxic dose of the herbicide paraquat could potentiate LPS-induced neurotoxicity. LPS administration caused a transient disruption of BBB integrity, evidenced by increased levels of exogenously administered sodium fluorescein in the striatum. Also, LPS exposure caused delayed impairment in social recognition memory (evaluated at day 38 after treatments) and increase in the striatal levels of 3-nitrotyrosine. These events were observed in the absence of significant changes in motor coordination and in the levels of tyrosine hydroxylase (TH) in the striatum and substantia nigra. PQ exposure, which caused a long-lasting decrease of striatal mitochondrial complex I activity, did not modify LPS-induced behavioral and striatal biochemical changes. The results indicate that systemic administration of LPS causes delayed social recognition memory deficit and striatal nitrosative stress in adult mice and that the coexposure to a moderately toxic dose of PQ did not magnify these events. In addition, PQ-induced inhibition of striatal mitochondrial complex I was also not magnified by LPS exposure, indicating the absence of synergic neurotoxic effects of LPS and PQ in this experimental model.


Subject(s)
Behavior, Animal/drug effects , Corpus Striatum/drug effects , Lipopolysaccharides/pharmacology , Nitrosative Stress/drug effects , Paraquat/toxicity , Animals , Corpus Striatum/metabolism , Male , Memory/drug effects , Mice , Neostriatum/drug effects , Neostriatum/metabolism , Neurotoxicity Syndromes/drug therapy , Substantia Nigra/drug effects , Substantia Nigra/metabolism
11.
Neural Plast ; 2018: 4056383, 2018.
Article in English | MEDLINE | ID: mdl-30186318

ABSTRACT

Huntington's disease (HD) is an autosomal dominant neurodegenerative disorder caused by a trinucleotide expansion in the HD gene, resulting in an extended polyglutamine tract in the protein huntingtin. HD is traditionally viewed as a movement disorder, but cognitive and neuropsychiatric symptoms also contribute to the clinical presentation. Depression is one of the most common psychiatric disturbances in HD, present even before manifestation of motor symptoms. Diagnosis and treatment of depression in HD-affected individuals are essential aspects of clinical management in this population, especially owing to the high risk of suicide. This study investigated whether chronic administration of the antioxidant probucol improved motor and affective symptoms as well as hippocampal neurogenic function in the YAC128 transgenic mouse model of HD during the early- to mild-symptomatic stages of disease progression. The motor performance and affective symptoms were monitored using well-validated behavioral tests in YAC128 mice and age-matched wild-type littermates at 2, 4, and 6 months of age, after 1, 3, or 5 months of treatment with probucol (30 mg/kg/day via water supplementation, starting on postnatal day 30). Endogenous markers were used to assess the effect of probucol on cell proliferation (Ki-67 and proliferation cell nuclear antigen (PCNA)) and neuronal differentiation (doublecortin (DCX)) in the hippocampal dentate gyrus (DG). Chronic treatment with probucol reduced the occurrence of depressive-like behaviors in early- and mild-symptomatic YAC128 mice. Functional improvements were not accompanied by increased progenitor cell proliferation and neuronal differentiation. Our findings provide evidence that administration of probucol may be of clinical benefit in the management of early- to mild-symptomatic HD.


Subject(s)
Antidepressive Agents/administration & dosage , Antioxidants/administration & dosage , Depression/prevention & control , Huntington Disease/complications , Probucol/administration & dosage , Animals , Cell Differentiation/drug effects , Cell Proliferation/drug effects , Cholesterol/blood , Corpus Striatum/drug effects , Corpus Striatum/pathology , Depression/complications , Disease Models, Animal , Doublecortin Protein , Female , Hippocampus/drug effects , Hippocampus/pathology , Huntington Disease/physiopathology , Male , Mice, Transgenic , Motor Activity/drug effects , Neurons/drug effects , Neurons/physiology
12.
Article in English | MEDLINE | ID: mdl-28379072

ABSTRACT

Mercury (Hg) toxicity continues to represent a global health concern. Given that human populations are mostly exposed to low chronic levels of mercurial compounds (methylmercury through fish, mercury vapor from dental amalgams, and ethylmercury from vaccines), the need for more sensitive and refined tools to assess the effects and/or susceptibility to adverse metal-mediated health risks remains. Traditional biomarkers, such as hair or blood Hg levels, are practical and provide a reliable measure of exposure, but given intra-population variability, it is difficult to establish accurate cause-effect relationships. It is therefore important to identify and validate biomarkers that are predictive of early adverse effects prior to adverse health outcomes becoming irreversible. This review describes the predominant biomarkers used by toxicologists and epidemiologists to evaluate exposure, effect and susceptibility to Hg compounds, weighing on their advantages and disadvantages. Most importantly, and in light of recent findings on the molecular mechanisms underlying Hg-mediated toxicity, potential novel biomarkers that might be predictive of toxic effect are presented, and the applicability of these parameters in risk assessment is examined.


Subject(s)
Environmental Exposure/adverse effects , Environmental Pollutants/toxicity , Mercury Compounds/toxicity , Mercury/toxicity , Methylmercury Compounds/toxicity , Animals , Biomarkers/analysis , Humans , Risk Assessment
13.
J Toxicol Environ Health A ; 80(19-21): 1145-1155, 2017.
Article in English | MEDLINE | ID: mdl-28850017

ABSTRACT

Various studies on methylmercury (MeHg)-induced toxicity focused on the central nervous system (CNS) as a primary target. However, MeHg-mediated toxicity is related to metallic interaction with electrophilic groups, which are not solely restricted to the CNS, but these reactive groups are present ubiquitously in several systems/organs. The aim of this study was thus to examine MeHg-induced systemic toxicity in mice using a standardized neurotoxicology testing exposure model to measure cerebellar neurotoxicity by determining biochemical and behavioral parameters in the cerebellum. After 2 weeks exposure to MeHg (40 µg/ml; diluted in drinking water; ad libitum), adult male Swiss mice showed a marked motor impairment characteristic of cerebellar toxicity as noted in the following tests: rotarod, beam walking, pole, and hind limb clasping. MeHg treatment resulted in Hg deposition in the cerebellum as well as reduction in cerebellar weight, glutathione peroxidase (GPx) activity, and interleukin (IL)-6 levels. MeHg ingestion increased cerebellar glutathione reductase (GR) activity and brain-derived neurotrophic factor (BDNF) levels. In addition to cerebellar toxicity, MeHg treatment also elevated total and non-high density lipoprotein (non-HDL) cholesterol levels, as well as serum aspartate transaminase (AST) and alanine transaminase (ALT) enzymatic activities, systemic parameters. Increased liver weight and reduced serum urea levels were also noted in MeHg-exposed mice. Taken together, our findings demonstrated that a well-standardized exposure protocol to examine MeHg-induced neurotoxicity also produced systemic toxicity in mice, which was characterized by changes in markers of hepatic function as well as serum lipid homeostasis.


Subject(s)
Blood/drug effects , Cerebellum/drug effects , Environmental Pollutants/toxicity , Liver/drug effects , Methylmercury Compounds/toxicity , Motor Activity/drug effects , Animals , Blood Chemical Analysis , Cerebellum/metabolism , Liver/metabolism , Male , Mice
14.
Cell Mol Neurobiol ; 36(6): 1015-1022, 2016 Aug.
Article in English | MEDLINE | ID: mdl-26749581

ABSTRACT

α-Tocopheryl phosphate (αTP) is a phosphorylated form of α-tocopherol. Since it is phosphorylated in the hydroxyl group that is essential for the antioxidant property of α-tocopherol, we hypothesized that αTP would modulate the antioxidant system, rather than being an antioxidant agent per se. α-TP demonstrated antioxidant activity in vitro against iron-induced oxidative stress in a mitochondria-enriched fraction preparation treated with 30 or 100 µM α-TP. However, this effect was not observed ex vivo with mitochondrial-enriched fraction from mice treated with an intracerebroventricular injection of 0.1 or 1 nmol/site of αTP. Two days after treatment (1 nmol/site αTP), peroxiredoxin 2 (Prx2) and glutathione reductase (GR) expression and GR activity were decreased in cerebral cortex and hippocampus. Glutathione content, glutathione peroxidase, and thioredoxin reductase activities were not affected by αTP. In conclusion, the persistent decrease in GR and Prx2 protein content is the first report of an in vivo effect of αTP on protein expression in the mouse brain, potentially associated to a novel and biologically relevant function of this naturally occurring compound.


Subject(s)
Antioxidants/pharmacology , Brain/drug effects , Glutathione Reductase/metabolism , Oxidative Stress/drug effects , Peroxiredoxins/metabolism , alpha-Tocopherol/analogs & derivatives , Animals , Antioxidants/metabolism , Brain/metabolism , Glutathione Peroxidase/drug effects , Glutathione Peroxidase/metabolism , Male , Mice , Mitochondria/drug effects , Mitochondria/metabolism , Oxidation-Reduction , alpha-Tocopherol/pharmacology
15.
Epilepsy Behav ; 55: 92-100, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26773677

ABSTRACT

Epilepsy is a brain function disorder characterized by unpredictable and recurrent seizures. The majority of patients with temporal lobe epilepsy (TLE), which is the most common type of epilepsy, have to live not only with seizures but also with behavioral alterations, including anxiety, psychosis, depression, and impaired cognitive functioning. The pilocarpine model has been recognized as an animal model of TLE. However, there are few studies addressing behavioral alterations in the maturation phase when evaluating the time course of the epileptogenic process after pilocarpine administration. Therefore, the present work was designed to analyze the neurobehavioral impairments of male adult Wistar rats during maturation and chronic phases in the pilocarpine model of epilepsy. Behavioral tests included: open-field tasks, olfactory discrimination, social recognition, elevated plus maze, and the forced swimming test. The main behavioral alterations observed in both maturation and chronic phases of the pilocarpine model were olfactory and short-term social memory deficits and decrease in the immobility time in the forced swimming test. Moreover, increased anxiety-like responses were only observed in the maturation phase. These findings indicate that early behavioral impairments can be observed in the pilocarpine model during the maturation phase, and these behavioral deficits also occur during the acquired epilepsy (chronic phase). Several of the neurobehavioral impairments that are associated with epilepsy in humans were observed in the pilocarpine-treated rats, thus, rendering this animal model a useful tool to study neuroprotective strategies as well as neurobiological and psychopathological mechanisms associated with epileptogenesis.


Subject(s)
Disease Models, Animal , Epilepsy, Temporal Lobe/chemically induced , Epilepsy, Temporal Lobe/psychology , Maze Learning/drug effects , Motor Activity/drug effects , Pilocarpine/toxicity , Animals , Anxiety/chemically induced , Anxiety/pathology , Anxiety/psychology , Epilepsy, Temporal Lobe/pathology , Exploratory Behavior/drug effects , Exploratory Behavior/physiology , Male , Maze Learning/physiology , Motor Activity/physiology , Rats , Rats, Wistar , Swimming/physiology , Swimming/psychology , Time Factors
16.
Arch Toxicol ; 90(3): 647-60, 2016 Mar.
Article in English | MEDLINE | ID: mdl-25618550

ABSTRACT

The organophosphorus (OP) pesticide malathion is a neurotoxic compound whose acute toxicity is primarily caused by the inhibition of acetylcholinesterase (AChE), leading to cholinergic syndrome-related symptoms. Some lines of evidence indicate that long-term exposure to low levels of OP may produce neuropsychiatric and/or neurobehavioral signs that do not necessarily involve the AChE inhibition. This study evaluated the effects of a repeated (15-day period) and low-dose malathion exposure on spatial memory and discrimination (object location task), as well as on biochemical parameters in the hippocampus of mice [AChE and mitochondrial chain complexes activities; levels of proapoptotic proteins (Bax and Bak) and cholinergic neuronal and astroglial markers (ChAT and GFAP, respectively)]. Malathion treatments (30 and 100 mg/kg, s.c.) did not affect the body weight of animals and caused no evident signs of cholinergic toxicity throughout the treatment, although the highest dose (100 mg/kg) was associated with inhibition of AChE activity. Malathion-exposed animals showed a significant impairment on spatial memory and discrimination, which was correlated with a decrease in the mitochondrial complex I activity in the hippocampus. Moreover, malathion increased the levels of proapoptotic proteins and induced astroglial activation. The results show that long-term malathion exposure, at a dose that does not affect hippocampal AChE activity (30 mg/kg), caused impaired spatial memory and discrimination in mice that was related to hippocampal mitochondrial dysfunctional, astrogliosis and apoptosis. When extrapolated to humans, such results shed light on noncholinergic mechanisms likely related to the neurobehavioral and cognitive deficits observed in individuals chronically exposed to this pesticide.


Subject(s)
Astrocytes/drug effects , Cognition Disorders/chemically induced , Hippocampus/drug effects , Insecticides/toxicity , Malathion/toxicity , Animals , Apoptosis/drug effects , Astrocytes/pathology , Cholinesterase Inhibitors/toxicity , Dose-Response Relationship, Drug , Hippocampus/pathology , Male , Mice , Mitochondria/drug effects , Mitochondria/pathology , Spatial Memory/drug effects , Toxicity Tests, Chronic/methods
17.
J Neural Transm (Vienna) ; 121(4): 415-26, 2014 Apr.
Article in English | MEDLINE | ID: mdl-24166183

ABSTRACT

Epidemiological studies have indicated hypercholesterolemia in midlife as a risk factor for dementia in later life, bringing cholesterol to the forefront of Alzheimer's disease research. Herein, we modeled mild hypercholesterolemia in mice to evaluate biochemical and behavioral alterations linked to hypercholesterolemia. Swiss mice were fed a high fat/cholesterol diet (20 % fat and 1.25 % cholesterol) for an 8-week period (from 12 to 18 weeks old) and were tested on the object location, forced swimming and elevated plus-maze tasks. We also investigated hypercholesterolemia-induced changes on acetylcholinesterase (AChE) activity, oxidative damage, amyloid precursor protein (APP) processing and blood brain barrier (BBB) integrity within the prefrontal cortex and hippocampus. It was found that increased AChE activity within the prefrontal cortex and hippocampus is an early event associated with hypercholesterolemia-induced short-term memory impairments. We observed no signs of antioxidant imbalance and/or oxidative damage or changes in cortical and hippocampal densities of beta-site amyloid precursor protein-cleaving enzyme 1 and aquaporin-4, biomarkers of APP processing and BBB integrity, respectively. In addition, we treated SH-SY5Y human neuroblastoma cells with low-density lipoprotein (LDL) cholesterol in an attempt to manipulate cell cholesterol content. Notably, LDL cholesterol increased in a dose-dependent manner the activity of AChE in SH-SY5Y cells. The present findings provide new evidence that increased AChE activity within the prefrontal cortex and hippocampus is an early event associated with hypercholesterolemia-induced cognitive impairments.


Subject(s)
Acetylcholinesterase/metabolism , Hypercholesterolemia/complications , Memory Disorders/etiology , Memory Disorders/metabolism , Up-Regulation/physiology , Amyloid Precursor Protein Secretases/metabolism , Analysis of Variance , Animals , Aquaporin 4/metabolism , Aspartic Acid Endopeptidases/metabolism , Blood Glucose/metabolism , Cell Line, Tumor , Disease Models, Animal , Glutathione/metabolism , Glutathione Reductase/metabolism , Hippocampus/enzymology , Lipids/blood , Male , Maze Learning/physiology , Mice , Neuroblastoma/pathology , Prefrontal Cortex/enzymology , Swimming/psychology , Thiobarbituric Acid Reactive Substances/metabolism
18.
Mol Cell Biochem ; 390(1-2): 1-8, 2014 May.
Article in English | MEDLINE | ID: mdl-24623265

ABSTRACT

Interest in biochemistry of organoselenium compound has increased in the last decades, mainly due to their chemical and biological activities. Here, we investigated the protective effect of diphenyl diselenide (PhSe)2 (5 µmol/kg), in a mouse model of methylmercury (MeHg)-induced brain toxicity. Swiss male mice were divided into four experimental groups: control, (PhSe)2 (5 µmol/kg, subcutaneous administration), MeHg (40 mg/L, in tap water), and MeHg + (PhSe)2. After the treatment (21 days), the animals were killed and the cerebral cortex was analyzed. Electron microscopy indicated an enlarged and fused mitochondria leading to a reduced number of organelles, in the MeHg-exposed mice. Furthermore, cortical creatine kinase activity, a sensitive mitochondrial oxidative stress sensor, was almost abolished by MeHg. Subcutaneous (PhSe)2 co-treatment rescued from MeHg-induced mitochondrial alterations. (PhSe)2 also behaved as an enhancer of mitochondrial biogenesis, by increasing cortical mitochondria content in mouse-receiving (PhSe)2 alone. Mechanistically, (PhSe)2 (1 µM; 24 h) would trigger the cytoprotective Nrf-2 pathway for activating target genes, since astroglial cells exposed to the chalcogen showed increased content of hemeoxygenase type 1, a sensitive marker of the activation of this via. Thus, it is proposed that the (PhSe)2-neuroprotective effect might be linked to its mitoprotective activity.


Subject(s)
Benzene Derivatives/administration & dosage , Brain/metabolism , Heme Oxygenase-1/biosynthesis , Mitochondria/metabolism , Organoselenium Compounds/administration & dosage , Animals , Brain/pathology , Cerebral Cortex/drug effects , Cerebral Cortex/metabolism , Disease Models, Animal , Male , Mercury Poisoning, Nervous System/metabolism , Mercury Poisoning, Nervous System/pathology , Methylmercury Compounds/toxicity , Mice , Mitochondria/drug effects , Oxidative Stress/drug effects
19.
J Toxicol Environ Health A ; 77(1-3): 46-56, 2014.
Article in English | MEDLINE | ID: mdl-24555646

ABSTRACT

Methylmercury (MeHg) is a highly toxic environmental contaminant that produces neurological and developmental impairments in animals and humans. Although its neurotoxic properties have been widely reported, the molecular mechanisms by which MeHg enters the cells and exerts toxicity are not yet completely understood. Taking into account that MeHg is found mostly bound to sulfhydryl-containing molecules such as cysteine in the environment and based on the fact that the MeHg-cysteine complex (MeHg-S-Cys) can be transported via the L-type neutral amino acid carrier transport (LAT) system, the potential beneficial effects of L-methionine (L-Met, a well known LAT substrate) against MeHg (administrated as MeHg-S-Cys)-induced neurotoxicity in mice were investigated. Mice were exposed to MeHg (daily subcutaneous injections of MeHg-S-Cys, 10 mg Hg/kg) and/or L-Met (daily intraperitoneal injections, 250 mg/kg) for 10 consecutive days. After treatments, the measured hallmarks of toxicity were mostly based on behavioral parameters related to motor performance, as well as biochemical parameters related to the cerebellar antioxidant glutathione (GSH) system. MeHg significantly decreased motor activity (open-field test) and impaired motor performance (rota-rod task) compared with controls, as well as producing disturbances in the cerebellar antioxidant GSH system. Interestingly, L-Met administration did not protect against MeHg-induced behavioral and cerebellar changes, but rather increased motor impairments in animals exposed to MeHg. In agreement with this observation, cerebellar levels of mercury (Hg) were higher in animals exposed to MeHg plus L-Met compared to those only exposed to MeHg. However, this event was not observed in kidney and liver. These results are the first to demonstrate that L-Met enhances cerebellar deposition of Hg in mice exposed to MeHg and that this higher deposition may be responsible for the greater motor impairment observed in mice simultaneously exposed to MeHg and L-Met.


Subject(s)
Cerebellum/chemistry , Cysteine/analogs & derivatives , Environmental Pollutants/toxicity , Methionine/pharmacology , Methylmercury Compounds/toxicity , Motor Activity/drug effects , Neuroprotective Agents/pharmacology , Psychomotor Performance/drug effects , Animals , Antioxidants/metabolism , Biomarkers/metabolism , Cerebellum/metabolism , Cysteine/administration & dosage , Cysteine/pharmacokinetics , Cysteine/toxicity , Drug Administration Schedule , Environmental Pollutants/administration & dosage , Environmental Pollutants/pharmacokinetics , Glutathione/metabolism , Glutathione Peroxidase/metabolism , Injections, Intraperitoneal , Male , Methionine/administration & dosage , Methylmercury Compounds/administration & dosage , Methylmercury Compounds/pharmacokinetics , Mice , Neuroprotective Agents/administration & dosage , Random Allocation
20.
Toxicol Mech Methods ; 24(8): 529-35, 2014 Dec.
Article in English | MEDLINE | ID: mdl-24861666

ABSTRACT

Diphenyl ditelluride (PhTe)2 is a versatile molecule used in the organic synthesis and it is a potential prototype for the development of novel biologically active molecules. The mechanism(s) involved in (PhTe)2 toxicity is(are) elusive, but thiol oxidation of critical proteins are important targets. Consequently, the possible remedy of its toxicity by thiol-containing compounds is of experimental and clinical interest. The present study aimed to investigate putative mechanisms underlying the toxicity of (PhTe)2 in vivo. We assessed behavioral and oxidative stress parameters in mice, including the modulation of antioxidant enzymatic defense systems. In order to mitigate such toxicity, N-acetylcysteine (NAC) was administered before (3 d) and simultaneously with (PhTe)2 (7 d). Mice were separated into six groups receiving daily injections of (1) TFK (2.5 ml/kg, intraperitonealy (i.p.)) plus canola oil (10 ml/kg, subcutaneously (s.c.)), (2) NAC (100 mg/kg, i.p.) plus canola oil s.c., (3) TFK i.p. plus (PhTe)2 (10 µmol/kg, s.c.), (4) TFK i.p. plus (PhTe)2 (50 µmol/kg, s.c.), (5) NAC plus (PhTe)2 (10 µmol/kg, s.c.), and (6) NAC plus (PhTe)2 (50 µmol/kg, s.c.). (PhTe)2 treatment started on the fourth day of treatment with NAC. Results demonstrated that (PhTe)2 induced behavioral alterations and inhibited important selenoenzymes (thioredoxin reductase and glutathione peroxidase). Treatments produced no or minor effects on the activities of antioxidant enzymes catalase and glutathione reductase. Contrary to expected, NAC co-administration did not protect against the deleterious effects of (PhTe)2. Other low-molecular-thiol containing molecules should be investigated to determine whether or not they can be effective against ditellurides.


Subject(s)
Benzene Derivatives/toxicity , Environmental Pollutants/toxicity , Glutathione Peroxidase/antagonists & inhibitors , Nerve Tissue Proteins/antagonists & inhibitors , Neurotoxicity Syndromes/enzymology , Organometallic Compounds/toxicity , Oxidative Stress/drug effects , Thioredoxin-Disulfide Reductase/antagonists & inhibitors , Acetylcysteine/administration & dosage , Acetylcysteine/therapeutic use , Animals , Antioxidants/administration & dosage , Antioxidants/therapeutic use , Behavior, Animal/drug effects , Benzene Derivatives/administration & dosage , Benzene Derivatives/antagonists & inhibitors , Brain/drug effects , Brain/enzymology , Dose-Response Relationship, Drug , Environmental Pollutants/administration & dosage , Environmental Pollutants/antagonists & inhibitors , Glutathione Peroxidase/metabolism , Injections, Intraperitoneal , Injections, Subcutaneous , Male , Mice , Motor Activity/drug effects , Nerve Tissue Proteins/metabolism , Neurons/drug effects , Neurons/enzymology , Neurotoxicity Syndromes/prevention & control , Organometallic Compounds/administration & dosage , Organometallic Compounds/antagonists & inhibitors , Thioredoxin-Disulfide Reductase/metabolism , Toxicity Tests, Acute
SELECTION OF CITATIONS
SEARCH DETAIL