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2.
Redox Biol ; 19: 52-61, 2018 10.
Artigo em Inglês | MEDLINE | ID: mdl-30107295

RESUMO

Loss of brain glutathione has been associated with cognitive decline and neuronal death during aging and neurodegenerative diseases. However, whether decreased glutathione precedes or follows neuronal dysfunction has not been unambiguously elucidated. Previous attempts to address this issue were approached by fully eliminating glutathione, a strategy causing abrupt lethality or premature neuronal death that led to multiple interpretations. To overcome this drawback, here we aimed to moderately decrease glutathione content by genetically knocking down the rate-limiting enzyme of glutathione biosynthesis in mouse neurons in vivo. Biochemical and morphological analyses of the brain revealed a modest glutathione decrease and redox stress throughout the hippocampus, although neuronal dendrite disruption and glial activation was confined to the hippocampal CA1 layer. Furthermore, the behavioral characterization exhibited signs consistent with cognitive impairment. These results indicate that the hippocampal neurons require a large pool of glutathione to sustain dendrite integrity and cognitive function.


Assuntos
Cognição , Dendritos/metabolismo , Glutationa/metabolismo , Hipocampo/fisiologia , Neurônios/metabolismo , Animais , Dendritos/patologia , Hipocampo/citologia , Hipocampo/patologia , Masculino , Camundongos Endogâmicos C57BL , Neurônios/patologia , Oxirredução , Estresse Oxidativo
3.
J Neurosci ; 38(23): 5415-5428, 2018 06 06.
Artigo em Inglês | MEDLINE | ID: mdl-29769266

RESUMO

BDNF is a growth factor with important roles in the nervous system in both physiological and pathological conditions, but the mechanisms controlling its secretion are not completely understood. Here, we show that ARMS/Kidins220 negatively regulates BDNF secretion in neurons from the CNS and PNS. Downregulation of the ARMS/Kidins220 protein in the adult mouse brain increases regulated BDNF secretion, leading to its accumulation in the striatum. Interestingly, two mouse models of Huntington's disease (HD) showed increased levels of ARMS/Kidins220 in the hippocampus and regulated BDNF secretion deficits. Importantly, reduction of ARMS/Kidins220 in hippocampal slices from HD mice reversed the impaired regulated BDNF release. Moreover, there are increased levels of ARMS/Kidins220 in the hippocampus and PFC of patients with HD. ARMS/Kidins220 regulates Synaptotagmin-IV levels, which has been previously observed to modulate BDNF secretion. These data indicate that ARMS/Kidins220 controls the regulated secretion of BDNF and might play a crucial role in the pathogenesis of HD.SIGNIFICANCE STATEMENT BDNF is an important growth factor that plays a fundamental role in the correct functioning of the CNS. The secretion of BDNF must be properly controlled to exert its functions, but the proteins regulating its release are not completely known. Using neuronal cultures and a new conditional mouse to modulate ARMS/Kidins220 protein, we report that ARMS/Kidins220 negatively regulates BDNF secretion. Moreover, ARMS/Kidins220 is overexpressed in two mouse models of Huntington's disease (HD), causing an impaired regulation of BDNF secretion. Furthermore, ARMS/Kidins220 levels are increased in brain samples from HD patients. Future studies should address whether ARMS/Kidins220 has any function on the pathophysiology of HD.


Assuntos
Fator Neurotrófico Derivado do Encéfalo/metabolismo , Encéfalo/metabolismo , Doença de Huntington/metabolismo , Proteínas de Membrana/metabolismo , Proteínas do Tecido Nervoso/metabolismo , Sinaptotagminas/metabolismo , Adulto , Idoso , Animais , Feminino , Humanos , Masculino , Camundongos , Pessoa de Meia-Idade
4.
Biochem J ; 443(1): 3-11, 2012 Apr 01.
Artigo em Inglês | MEDLINE | ID: mdl-22417747

RESUMO

Oxidative and nitrosative stress underlie the pathogenesis of a broad range of human diseases, in particular neurodegenerative disorders. Within the brain, neurons are the cells most vulnerable to excess reactive oxygen and nitrogen species; their survival relies on the antioxidant protection promoted by neighbouring astrocytes. However, neurons are also intrinsically equipped with a biochemical mechanism that links glucose metabolism to antioxidant defence. Neurons actively metabolize glucose through the pentose phosphate pathway, which maintains the antioxidant glutathione in its reduced state, hence exerting neuroprotection. This process is tightly controlled by a key glycolysis-promoting enzyme and is dependent on an appropriate supply of energy substrates from astrocytes. Thus brain bioenergetic and antioxidant defence is coupled between neurons and astrocytes. A better understanding of the regulation of this intercellular coupling should be important for identifying novel targets for future therapeutic interventions.


Assuntos
Antioxidantes/metabolismo , Astrócitos/fisiologia , Metabolismo Energético , Neurônios/fisiologia , Animais , Astrócitos/metabolismo , Metabolismo dos Carboidratos , Glutationa/metabolismo , Humanos , Neurônios/metabolismo , Oxirredução , Estresse Oxidativo
5.
Nat Commun ; 3: 718, 2012 Mar 06.
Artigo em Inglês | MEDLINE | ID: mdl-22395609

RESUMO

Reactive oxygen species regulate redox-signaling processes, but in excess they can cause cell damage, hence underlying the aetiology of several neurological diseases. Through its ability to down modulate reactive oxygen species, glutathione is considered an essential thiol-antioxidant derivative, yet under certain circumstances it is dispensable for cell growth and redox control. Here we show, by directing the biosynthesis of γ-glutamylcysteine-the immediate glutathione precursor-to mitochondria, that it efficiently detoxifies hydrogen peroxide and superoxide anion, regardless of cellular glutathione concentrations. Knocking down glutathione peroxidase-1 drastically increases superoxide anion in cells synthesizing mitochondrial γ-glutamylcysteine. In vitro, γ-glutamylcysteine is as efficient as glutathione in disposing of hydrogen peroxide by glutathione peroxidase-1. In primary neurons, endogenously synthesized γ-glutamylcysteine fully prevents apoptotic death in several neurotoxic paradigms and, in an in vivo mouse model of neurodegeneration, γ-glutamylcysteine protects against neuronal loss and motor impairment. Thus, γ-glutamylcysteine takes over the antioxidant and neuroprotective functions of glutathione by acting as glutathione peroxidase-1 cofactor.


Assuntos
Dipeptídeos/metabolismo , Glutationa Peroxidase/metabolismo , Espécies Reativas de Oxigênio/metabolismo , Células 3T3 , Animais , Apoptose , Linhagem Celular , Coenzimas/metabolismo , Glutationa/metabolismo , Glutationa Peroxidase/genética , Glutationa Redutase/genética , Glutationa Redutase/metabolismo , Células HEK293 , Humanos , Peróxido de Hidrogênio/metabolismo , Inativação Metabólica , Camundongos , Mitocôndrias/metabolismo , Neurônios/metabolismo , Estresse Oxidativo/fisiologia , Interferência de RNA , RNA Interferente Pequeno , Ratos , Ratos Wistar , Superóxidos/metabolismo , Glutationa Peroxidase GPX1
6.
J Neurochem ; 112(6): 1574-83, 2010 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-20067579

RESUMO

Phospholipases A(2) (PLA(2)) participate in neuronal death signalling pathways because of their ability to release lipid mediators, although the contribution of each isoform and mechanism of neurotoxicity are still elusive. Using a novel fluorogenic method to assess changes in a PLA(2) activity by flow cytometry, here we show that the group IIA secretory phospholipase A(2) isoform (GIIA) was specifically activated in cortical neurons following stimulation of N-methyl-d-aspartate glutamate receptor subtype (NMDAR). For activation, GIIA required Ca(2+) and reactive oxygen/nitrogen species, and inhibition of its activity fully prevented NMDAR-mediated neuronal apoptotic death. Superoxide, nitric oxide or peroxynitrite donors stimulated GIIA activity, which mediated neuronal death. Intriguingly, we also found that GIIA activity induced mitochondrial superoxide production after NMDAR stimulation. These results reveal a novel role for GIIA in excitotoxicity both as target and producer of superoxide in a positive-loop of activation that may contribute to the propagation of neurodegeneration.


Assuntos
Apoptose/fisiologia , Córtex Cerebral/citologia , Fosfolipases A2 do Grupo II/metabolismo , Neurônios/fisiologia , Receptores de N-Metil-D-Aspartato/metabolismo , Animais , Anexina A5/metabolismo , Apoptose/efeitos dos fármacos , Cálcio/metabolismo , Células Cultivadas , Relação Dose-Resposta a Droga , Embrião de Mamíferos , Inibidores Enzimáticos/farmacologia , Antagonistas de Aminoácidos Excitatórios/farmacologia , Feminino , Citometria de Fluxo/métodos , Ácido Glutâmico/farmacologia , Fosfolipases A2 do Grupo II/farmacologia , Mitocôndrias/efeitos dos fármacos , Mitocôndrias/metabolismo , Molsidomina/análogos & derivados , Molsidomina/farmacologia , Neurônios/efeitos dos fármacos , Doadores de Óxido Nítrico/farmacologia , Compostos Nitrosos/farmacologia , Gravidez , Ratos , Ratos Wistar , Espécies Reativas de Oxigênio/metabolismo , Xantina/farmacologia , Xantina Oxidase/farmacologia
7.
Biochim Biophys Acta ; 1777(7-8): 789-93, 2008.
Artigo em Inglês | MEDLINE | ID: mdl-18455501

RESUMO

Besides its essential role at regulating neural functions through cyclic GMP, nitric oxide is emerging as an endogenous physiological modulator of energy conservation for the brain. Thus, nitric oxide inhibits cytochrome c oxidase activity in neurones and glia, resulting in down-regulation of mitochondrial energy production. The subsequent increase in AMP facilitates the activation of 5'-AMP-dependent protein kinase, which rapidly triggers the activation of 6-phosphofructo-1-kinase--the master regulator of the glycolytic pathway--and Glut1 and Glut3--the main glucose transporters in the brain. In addition, nitric oxide activates glucose-6-phosphate dehydrogenase, the first and rate-limiting step of the pentose-phosphate pathway. Here, we review recent evidences suggesting that nitric oxide exerts a fine control of neuronal energy metabolism by tuning the balance of glucose-6-phosphate consumption between glycolysis and pentose-phosphate pathway. This may have important implications for our understanding of the mechanisms controlling neuronal survival during oxidative stress and bioenergetic crisis.


Assuntos
Sobrevivência Celular/efeitos dos fármacos , Glicólise , Neurônios/fisiologia , Óxido Nítrico/farmacologia , Via de Pentose Fosfato/fisiologia , Animais , Metabolismo Energético , Glicólise/efeitos dos fármacos , Homeostase , Humanos , Neurônios/citologia , Neurônios/efeitos dos fármacos , Óxido Nítrico/fisiologia , Óxido Nítrico Sintase/metabolismo , Via de Pentose Fosfato/efeitos dos fármacos , Ácido Peroxinitroso/farmacologia , Fosfofrutoquinase-1/metabolismo
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