203 resultados para GABAA
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An important constraint on how hemodynamic neuroimaging signals such as fMRI can be interpreted in terms of the underlying evoked activity is an understanding of neurovascular coupling mechanisms that actually generate hemodynamic responses. The predominant view at present is that the hemodynamic response is most correlated with synaptic input and subsequent neural processing rather than spiking output. It is still not clear whether input or processing is more important in the generation of hemodynamics responses. In order to investigate this we measured the hemodynamic and neural responses to electrical whisker pad stimuli in rat whisker barrel somatosensory cortex both before and after the local cortical injections of the GABAA agonist muscimol. Muscimol would not be expected to affect the thalamocortical input into the cortex but would inhibit subsequent intra-cortical processing. Pre-muscimol infusion whisker stimuli elicited the expected neural and accompanying hemodynamic responses to that reported previously. Following infusion of muscimol, although the temporal profile of neural responses to each pulse of the stimulus train was similar, the average response was reduced in magnitude by ∼79% compared to that elicited pre-infusion. The whisker-evoked hemodynamic responses were reduced by a commensurate magnitude suggesting that, although the neurovascular coupling relationships were similar for synaptic input as well as for cortical processing, the magnitude of the overall response is dominated by processing rather than from that produced from the thalamocortical input alone.
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Diversos estudos sugerem que os receptores inibitórios GABAérgicos do tipo A estão envolvidos no processamento da memória. Para examinar o papel dos receptores GABAA na consolidação da memória, ratos foram implantados bilateralmente com cânulas na região CA1 do hipocampo, córtex entorrinal, córtex parietal posterior e núcleo basolateral da amígdala, e treinados na tarefa de esquiva inibitória. Em diferentes tempos depois do treino, o antagonista dos receptores GABAA - bicuculina - foi infundido nas estruturas acima mencionadas. A bicuculina facilitou a memória quando infundida imediatamente após o treino (0h) no hipocampo, córtex entorrinal e córtex parietal posterior; 1,5h no hipocampo; 3h no córtex entorrinal e no córtex parietal. Nos tempos mais tardios da consolidação da memória (4,5h e 6h) não houve facilitação. A bicuculina não teve efeito na memória quando administrada na amígdala em nenhum dos tempos. Nossos dados sugerem que os receptores GABAérgicos inibem os primeiros momentos da consolidação da memória de longa duração no hipocampo, córtex entorrinal e córtex posterior, mas não nos tempos mais tardios.
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Para um adequado funcionamento do SNC, são necessárias complexas interações entre os sistemas de neurotransmissão inibitório e excitatório. Desequilíbrios nos sistemas, e/ou na sua interação, podem acarretar comprometimentos neuropsiquiátricos. Várias etapas do desenvolvimento ontogenético cerebral, incluindo proliferação e migração neuronal, crescimento cerebral e mielinização, astrocitogênese e morte celular programada, são alteradas pela desnutrição protéica. Alterações no sistema glutamatérgico decorrentes de desnutrição, padrões de desenvolvimento afetados no sistema GABAérgico como a atividade da glutamato descarboxilase (GAD) e mRNA de subunidades de receptores GABAA , alterações nas reações a fármacos envolvendo o sistema GABAérgico, além de estudos epidemiológicos que apontam para a maior incidência de doenças neuropsiquiátricas em populações desnutridas precocemente e, ainda, os transtornos nas complexas interações entre células neuronais e gliais, que acompanham o desenvolvimento destas patologias, levantam questionamentos sobre as implicações da desnutrição sobre o metabolismo cerebral e parâmetros inibitórios e excitatórios sob condições de excitotoxicidade. Considerando estes aspectos, investigou-se a sensibilidade a drogas convulsivantes agindo sobre os sistemas glutamatérgico (ácido quinolínico) e GABAérgico (picrotoxina), assim como se procurou detectar interferências provocadas pela desnutrição protéica gestacional e pós-natal, e/ou drogas em um dos parâmetros, que, além da biossíntese, liberação, interação com receptores, determina uma neurotransmissão eficiente, qual seja: na inativação dos dois principais neurotransmissores excitatório e inibitório, glutamato e GABA, respectivamente, por meio da captação mediada por transportadores localizados nas membranas neuronais e gliais de córtex e hipocampo de ratos em desenvolvimento, assim como parâmetros ontogenéticos ligados ao transporte de GABA. A sensibilidade à picrotoxina foi avaliada ainda segundo parâmetros metabólicos, envolvendo o metabolismo da glicose e do acetato, procurando detectar interações neurônio-glia na resposta à droga, assim como a ocorrência de peroxidação lipídica, dado o seu envolvimento no processo convulsivante. Considerando que o acetato é metabolizado predominantemente pelos astrócitos, células que têm importante papel no fluxo de substratos energéticos aos neurônios, a sua oxidação foi avaliada em fatias de córtex cerebral de ratos adultos, frente a diferentes concentrações extracelulares de potássio. A desnutrição acarretou menor sensibilidade à ação convulsivante do ácido quinolínico, em ratos de 25 dias de idade, excluindo alterações na captação de glutamato como mecanismo envolvido, uma vez que este parâmetro não foi afetado pela desnutrição e/ou droga. Contrariamente, a desnutrição induziu maior sensibilidade à ação convulsivante da picrotoxina, em ratos de 25 dias, o que pode estar relacionado à maior captação de GABA por fatias de córtex cerebral e hipocampo evidenciadas no grupo desnutrido. A desnutrição alterou o perfil ontogenético da captação de GABA por fatias de córtex cerebral e também o perfil inibitório da β-alanina (inibidor de GAT-3), dando suporte à hipótese de que a maior captação de GABA em ratos desnutridos em desenvolvimento seja devida predominantemente a este transportador. A maior sensibilidade à picrotoxina no grupo desnutrido também foi evidenciada pelo maior estímulo à oxidação da glicose em fatias de córtex cerebral (que também é idade dependente) e peroxidação lipídica. Enquanto em ratos imaturos a administração de uma única dose de picrotoxina mostrou a maior susceptibilidade de ratos desnutridos, no procedimento de “kindling” químico pela picrotoxina em ratos em desenvolvimento, a susceptibilidade mostrou-se sexo e tratamento nutricional dependente. A picrotoxina estimulou a oxidação do acetato a CO2, mas não a da glicose em período precoce pós picrotoxina (24 horas) em fatias de córtex e hipocampo de ratos de 25 dias, indicando o envolvimento astrocitário na resposta ao agente convulsivante, independente do tratamento nutricional. A administração crônica de picrotoxina acarretou estímulo à oxidação da glicose em fatias de córtex de ratos desnutridos, mostrando efeito tempo e tratamento nutricional-dependente sobre o metabolismo da glicose, sem alteração da oxidação do acetato. Altas concentrações de potássio extracelular aumentaram a oxidação do acetato em fatias de córtex cerebral, em função da redução intracelular de sódio em ratos controle e desnutridos adultos; o agravamento do déficit nutricional exacerbou a oxidação do acetato em fatias de cerebelo. A desnutrição pré e pós-natal afeta respostas envolvendo os sistemas GABAérgico e glutamatérgico em situações de excitotoxicidade, provocada por antagonista de receptor GABAA, picrotoxina e por hiperestimulador do sistema glutamatérgico, ácido quinolínico, em ratos em desenvolvimento, assim como parâmetros ontogenéticos ligados ao transporte de GABA. A severidade da restrição nutricional é fator determinante da exacerbação do estímulo à oxidação do acetato. Além do mais, a desnutrição parece afetar a interação neurônio-glia em condições de excitotoxicidade.
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SCHEFFZUK, C. , KUKUSHKA, V. , VYSSOTSKI, A. L. , DRAGUHN, A. , TORT, A. B. L. , BRANKACK, J. . Global slowing of network oscillations in mouse neocortex by diazepam. Neuropharmacology , v. 65, p. 123-133, 2013.
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Inhibitory serotonergic and cholecystokinergic mechanisms in the lateral parabrachial nucleus and central GABAergic mechanisms are involved in the regulation of water and NaCl intake. In the present study we investigated if the GABA(A) receptors in the lateral parabrachial nucleus are involved in the control of water, NaCl and food intake in rats. Male Holtzman rats with stainless steel cannulas implanted bilaterally into the lateral parabrachial nucleus were used. Bilateral injections of muscimol (0.2 nmol/0.2 mu l) into the lateral parabrachial nucleus strongly increased 0.3 M NaCl (20.3 +/- 7.2 vs. saline: 2.6 +/- 0.9 ml/180 min) without changing water intake induced by the treatment with the diuretic furosemide combined with low dose of the angiotensin converting enzyme inhibitor captopril s.c. In euhydrated and satiated rats, bilateral lateral parabrachial nucleus injections of muscimol (0.2 and 0.5 nmol/0.2 0) induced 0.3 M NaCl intake (12.1 +/- 6.5 and 32.5 +/- 7.3 ml/180 min, respectively, vs. saline: 0.4 +/- 0.2 ml/180 min) and water intake (5.2 +/- 2.0 and 7.6 +/- 2.8 ml/ 180 min, respectively, vs. saline: 0.8 +/- 0.4 ml/180 min), but no food intake (2 +/- 0.4 g/240 min vs. saline: 1 +/- 0.3 g/240 min). Bilateral lateral parabrachial nucleus injections of the GABAA antagonist bicuculline (1.6 nmol/0.2 mu l) abolished the effects of muscimol (0.5 nmol/0.2 mu l) on 0.3 M NaCl and water intake. Muscimol (0.5 nmol/0.2 mu l) into the lateral parabrachial nucleus also induced a slight ingestion of water (4.2 +/- 1.6 ml/240 min vs. saline: 1.1 +/- 0.3 ml/240 min) when only water was available, a long lasting (for at least 2 h) increase on mean arterial pressure (14 +/- 4 mm Hg, vs. saline: -1 +/- 1 mm Hg) and only a tendency to increase urinary volume and Na+ and K+ renal excretion. Therefore the activation of GABAA receptors in the lateral parabrachial nucleus induces strong NaCl intake, a small ingestion of water and pressor responses, without changes on food intake. (c) 2005 Published by Elsevier Ltd on behalf of IBRO.
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GABAergic activation in the lateral parabrachial nucleus (LPBN) induces sodium and water intake in satiated and normovolemic rats. In the present study we investigated the effects of GABA(A) receptor activation in the LPBN on 0.3 M NaCl, water, 2% sucrose and food intake in rats submitted to sodium depletion (treatment with the diuretic furosemide subcutaneously + sodium deficient food for 24 h), 24 h food deprivation or 24 h water deprivation. Male Holtzman rats with bilateral stainless steel cannulas implanted into the LPBN were used. In sodium depleted rats, muscimol (GABA(A) receptor agonist, 0.5 nmol/0.2 mu/l), bilaterally injected into the LPBN, produced an inconsistent increase of water intake and two opposite effects on 0.3 M NaCl intake: an early inhibition (4.3 +/- 2.7 versus saline: 14.4 +/- 1.0 ml/15 min) and a late facilitation (37.6 +/- 2.7 versus saline: 21.1 +/- 0.9 ml/180 min). The pretreatment of the LPBN with bicuculline (GABA(A) receptor antagonist, 1.6 nmol) abolished these effects of muscimol. Muscimol into the LPBN also reduced food deprivation-induced food intake in the first 30 min of test (1.7 +/- 0.6 g versus saline: 4.1 +/- 0.6 g), without changing water deprivation-induced water intake or 2% sucrose intake in sodium depleted rats. Therefore, although GABAA receptors in the LPBN are not tonically involved in the control of sodium depletion-induced sodium intake, GABAA receptor activation in the LPBN produces an early inhibition and a late facilitation of sodium depletion-induced sodium intake. GABAA activation in the LPBN also inhibits food intake, while it consistently increases only sodium intake and not water, food or sucrose intake. (c) 2007 Elsevier B.V. All rights reserved.
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Inhibitory mechanisms in the lateral parabrachial nucleus (LPBN) and central GABAergic mechanisms are involved in the regulation of water and NaCl intake. Besides increasing fluid depletion-induced sodium intake, the activation of GABA(A) receptors with muscimol into the LPBN also induces ingestion of 0.3 M NaCl in normonatremic, euhydrated rats. It has been suggested that inhibitory mechanisms activated by osmotic signals are blocked by GABAA receptor activation in the LPBN, thereby increasing hypertonic NaCl intake. Therefore, in the present study we investigated the effects of muscimol injected into the LPBN on water and 0.3 M NaCl intake in hyperosmotic cell-dehydrated rats (rats treated with an intragastric load of 2 M NaCl). Male Wistar rats with stainless steel cannulas implanted bilaterally into the LPBN were used. In euhydrated rats, muscimol (0.5 nmol/0.2 mu l), bilaterally injected into the LPBN, induced ingestion of 0.3 M NaCl (24.6 +/- 7.9 vs. vehicle: 0.5 +/- 0.3 ml/180 min) and water (6.3 +/- 2.1 vs. vehicle: 0.5 +/- 0.3 ml/180 min). One hour after intragastric 2 M NaCl load (2 ml), bilateral injections of muscimol into the LPBN also induced 0.3 M NaCl intake (22.1 +/- 5.2 vs. vehicle: 0.9 +/- 0.8 ml/210 min) and water intake (16.5 +/- 3.6 vs. vehicle: 7.8 +/- 1.8 ml/210 min). The GABAA antagonist bicuculline (0.4 nmol/0.2 mu l) into the LPBN reduced the effect of muscimol on 0.3 M NaCl intake (7.1 +/- 2.1 ml/210 min). Therefore, the activation of GABAA receptors in the LPBN induces ingestion of 0.3 M NaCl by hyperosmotic cell-dehydrated rats, suggesting that plasma levels of renin or osmolarity do not affect sodium intake after the blockade of LPBN inhibitory mechanisms with muscimol. (c) 2007 Elsevier B.V. All rights reserved.
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The nucleus of the solitary tract (NTS) is the site of the first synapse of cardiovascular afferent fibers in the central nervous system. Important mechanisms for cardiovascular regulation are also present in the caudal pressor area (CPA) localized at the caudal end of the ventrolateral medulla. In the present study we sought to investigate the role of the commissural subnucleus of the NTS (commNTS) on pressor and tachycardic responses induced by L-glutamate injected into the CPA. Male Holtzman rats (n=8 rats/group) anesthetized with urethane (1.2 g/kg of body weight, iv) received injections of the GABAA receptor agonist muscimol into the commNTS. Unilateral injection of L-glutamate (10 nmol/ 100 nL) into the CPA increased mean arterial pressure (MAP, 31 4 mm Hg, vs. saline: 3 +/- 2 mm Hg) and heart rate (HR, 44 8 bpm, vs. saline: 10 7 bpm). inhibition of commNTS neurons with muscimol (120 pmol/60 nL) abolished the increase in MAP (9 4 mm Hg) and HR (17 7 bpm) produced by L-glutamate into the CPA. The present results suggest that the pressor and tachycardic responses to CPA activation are dependent on commNTS mechanisms.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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New Findings: • What is the central question of this study? The main purpose of the present manuscript was to investigate the cardiorespiratory responses to hypoxia or hypercapnia in conscious rats submitted to neuronal blockade of the parafacial region. We clearly showed that the integrity of parafacial region is important for the respiratory responses elicited by peripheral and central chemoreflex activation in freely behavior rats. • What is the main finding and its importance? Since the parafacial region is part of the respiratory rhythm generator, they are essential for postnatal survival, which is probably due to their contribution to chemoreception in conscious rats. The retrotrapezoid nucleus (RTN), located in the parafacial region, contains glutamatergic neurons that express the transcriptor factor Phox2b and that are suggested to be central respiratory chemoreceptors. Studies in anaesthetized animals or in vitro have suggested that RTN neurons are important in the control of breathing by influencing respiratory rate, inspiratory amplitude and active expiration. However, the contribution of these neurons to cardiorespiratory control in conscious rats is not clear. Male Holtzman rats (280-300 g, n= 6-8) with bilateral stainless-steel cannulae implanted into the RTN were used. In conscious rats, the microinjection of the ionotropic glutamatergic agonist NMDA (5 pmol in 50 nl) into the RTN increased respiratory frequency (by 42%), tidal volume (by 21%), ventilation (by 68%), peak expiratory flow (by 24%) and mean arterial pressure (MAP, increased by 16 ± 4, versus saline, 3 ± 2 mmHg). Bilateral inhibition of the RTN neurons with the GABAA agonist muscimol (100 pmol in 50 nl) reduced resting ventilation (52 ± 34, versus saline, 250 ± 56 ml min-1 kg-1 with absolute values) and attenuated the respiratory response to hypercapnia and hypoxia. Muscimol injected into the RTN slightly reduced resting MAP (decreased by 13 ± 7, versus saline, increased by 3 ± 2 mmHg), without changing the effects of hypercapnia or hypoxia on MAP and heart rate. The results suggest that RTN neurons activate facilitatory mechanisms important to the control of ventilation in resting, hypoxic or hypercapnic conditions in conscious rats. © 2012 The Authors. Experimental Physiology © 2012 The Physiological Society.
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Bilateral injections of the GABAA agonist muscimol into the lateral parabrachial nucleus (LPBN) disrupt satiety and induce strong ingestion of water and 0.3M NaCl in fluid-replete rats by mechanisms not completely clear. In the present study, we investigated the effects of the blockade of central muscarinic cholinergic receptors with atropine injected intracerebroventricularly (i.c.v.) on 0.3M NaCl and water intake induced by muscimol injections into the LPBN in fluid-replete rats. Male Holtzman rats with stainless steel cannulas implanted bilaterally into the LPBN and unilaterally into the lateral ventricle (LV) were used. Bilateral injections of muscimol (0.5nmol/0.2μL) into the LPBN induced 0.3M NaCl (32.2±9.9mL/4h, vs. saline: 0.4±0.2mL/4h) and water intake (11.4±4.4mL/4h, vs. saline: 0.8±0.4mL/4h) in fluid-replete rats previously treated with i.c.v. injection of saline. The previous i.c.v. injection of atropine (20nmol/1μL) reduced the effects of LPBN-muscimol on 0.3M NaCl (13.5±5.0mL/4h) and water intake (2.9±1.6mL/4h). The i.c.v. injection of atropine did not affect 0.3M NaCl (26.8±6.2mL/2h, vs. saline i.c.v.: 36.5±9.8mL/2h) or water intake (14.4±2.5mL/2h, vs. saline i.c.v.: 15.6±4.8mL/2h) in rats treated with furosemide+captopril subcutaneously combined with bilateral injections of moxonidine (α2-adrenoceptor/imidazoline agonist, 0.5nmol/0.2μL) into the LPBN, suggesting that the effect of atropine was not due to non-specific inhibition of ingestive behaviors. The results show that active central cholinergic mechanisms are necessary for the hypertonic NaCl and water intake induced by the blockade of the inhibitory mechanisms with injections of muscimol into the LPBN in fluid-replete rats. The suggestion is that in fluid-replete rats the action of LPBN mechanisms inhibits facilitatory signals produced by the activity of central cholinergic mechanisms to maintain satiety. © 2012 Elsevier B.V.
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Objective: Gamma-aminobutyric acid A (GABAA) receptor activation with muscimol in the lateral parabrachial nucleus (LPBN) induces water and 0.3 M NaCl intake. The purpose of this study was to investigate whether a local inflammatory event, such as periodontal disease (PD), is able to alter the effects of muscimol on water and 0.3 M NaCl intake in fluid-replete rats and in rats treated with furosemide (FURO) combined with captopril (CAP) injected subcutaneously. Design: Male Wistar rats were divided into two groups: with PD and those without PD (control condition). Fifteen days after PD, both groups had cannulas implanted bilaterally into the LPBN. Results: In fluid-replete rats without PD, injections of muscimol (0.5 nmol/0.2 μl) into the LPBN induced 0.3 M NaCl and water intake and a pressor response. In fluid-replete rats with PD, a decrease was observed in water intake and pressor response but not in 0.3 M NaCl intake. In control rats with FURO + CAP treatment, injections of muscimol into the LPBN increased 0.3 M NaCl and water intake. In PD rats with FURO + CAP treatment, a decrease was observed in 0.3 M NaCl and water intake after muscimol in the LPBN. Alveolar bone loss and interleukin-6 (IL-6) and tumour necrosis factor-α (TNF-α) plasmatic concentration were higher in PD rats in comparison with controls. Conclusion: These results suggest that PD is able to reduce the pressor response and the dipsogenic and natriorexigenic effects induced by the activation of GABAA receptors in the LPBN, probably due to the elevation of the plasmatic concentration of pro-inflammatory cytokines IL-6 and TNF-α. © 2013 Elsevier Ltd. All rights reserved.
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Pós-graduação em Ciências Fisiológicas - FOA
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)