993 resultados para CEREBRAL MALARIA


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Life-threatening Plasmodium vivax malaria cases, while uncommon, have been reported since the early 20th century. Unfortunately, the pathogenesis of these severe vivax malaria cases is still poorly understood. In Brazil, the proportion of vivax malaria cases has been steadily increasing, as have the number of cases presenting serious clinical complications. The most frequent syndromes associated with severe vivax malaria in Brazil are severe anaemia and acute respiratory distress. Additionally, P. vivax infection may also result in complications associated with pregnancy. Here, we review the latest findings on severe vivax malaria in Brazil. We also discuss how the development of targeted field research infrastructure in Brazil is providing clinical and ex vivo experimental data that benefits local and international efforts to understand the pathogenesis of P. vivax. (C) 2012 Australian Society for Parasitology Inc. Published by Elsevier Ltd. All rights reserved.

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Objective-The coagulation-inflammation cycle has been implicated as a critical component in malaria pathogenesis. Defibrotide (DF), a mixture of DNA aptamers, displays anticoagulant, anti-inflammatory, and endothelial cell (EC)-protective activities and has been successfully used to treat comatose children with veno-occlusive disease. DF was investigated here as a drug to treat cerebral malaria. Methods and Results-DF blocks tissue factor expression by ECs incubated with parasitized red blood cells and attenuates prothrombinase activity, platelet aggregation, and complement activation. In contrast, it does not affect nitric oxide bioavailability. We also demonstrated that Plasmodium falciparum glycosylphosphatidylinositol (Pf-GPI) induces tissue factor expression in ECs and cytokine production by dendritic cells. Notably, dendritic cells, known to modulate coagulation and inflammation systemically, were identified as a novel target for DF. Accordingly, DF inhibits Toll-like receptor ligand-dependent dendritic cells activation by a mechanism that is blocked by adenosine receptor antagonist (8-p-sulfophenyltheophylline) but not reproduced by synthetic poly-A, -C, -T, and -G. These results imply that aptameric sequences and adenosine receptor mediate dendritic cells responses to the drug. DF also prevents rosetting formation, red blood cells invasion by P. falciparum and abolishes oocysts development in Anopheles gambiae. In a murine model of cerebral malaria, DF affected parasitemia, decreased IFN-gamma levels, and ameliorated clinical score (day 5) with a trend for increased survival. Conclusion-Therapeutic use of DF in malaria is proposed. (Arterioscler Thromb Vasc Biol. 2012; 32:786-798.)

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Cerebral malaria is characterized by cytoadhesion of Plasmodium falciparum–infected red blood cells (Pf-iRBCs) to endothelial cells in the brain, disruption of the blood-brain barrier, and cerebral microhemorrhages. No available antimalarial drugs specifically target the endothelial disruptions underlying this complication, which is responsible for the majority of malaria-associated deaths. Here, we have demonstrated that ruptured Pf-iRBCs induce activation of β-catenin, leading to disruption of inter–endothelial cell junctions in human brain microvascular endothelial cells (HBMECs). Inhibition of β-catenin–induced TCF/LEF transcription in the nucleus of HBMECs prevented the disruption of endothelial junctions, confirming that β-catenin is a key mediator of P. falciparum adverse effects on endothelial integrity. Blockade of the angiotensin II type 1 receptor (AT1) or stimulation of the type 2 receptor (AT2) abrogated Pf-iRBC–induced activation of β-catenin and prevented the disruption of HBMEC monolayers. In a mouse model of cerebral malaria, modulation of angiotensin II receptors produced similar effects, leading to protection against cerebral malaria, reduced cerebral hemorrhages, and increased survival. In contrast, AT2-deficient mice were more susceptible to cerebral malaria. The interrelation of the β-catenin and the angiotensin II signaling pathways opens immediate host-targeted therapeutic possibilities for cerebral malaria and other diseases in which brain endothelial integrity is compromised.

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Malaria is a pathology caused by a parasite called Plasmodium, characteristic of tropical countries. The most frequent symptomatology includes cerebral malaria, jaundice, convulsive crisis, anemia, hypoglycemia, kidney failure and metabolic acidosis, among others. We are presenting the case of a patient diagnosed with malaria who suffered from acute hemorrhagic necrotizing pancreatitis and evolved poorly, as an example of this combination of symptoms, rarely found in our country.

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Recent reports highlight the severity and the morbidity of disease caused by the long neglected malaria parasite Plasmodium vivax. Due to inherent difficulties in the laboratory-propagation of P. vivax, the biology of this parasite has not been adequately explored. While the proteome of P. falciparum, the causative agent of cerebral malaria, has been extensively explored from several sources, there is limited information on the proteome of P. vivax. We have, for the first time, examined the proteome of P. vivax isolated directly from patients without adaptation to laboratory conditions. We have identified 153 proteins from clinical P. vivax, majority of which do not show homology to any previously known gene products. We also report 29 new proteins that were found to be expressed in P. vivax for the first time. In addition, several proteins previously implicated as anti-malarial targets, were also found in our analysis. Most importantly, we found several unique proteins expressed by P. vivax. This study is an important step in providing insight into physiology of the parasite under clinical settings.

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Endothelial dysregulation is central to the pathogenesis of acute Plasmodium falciparum infection. It has been assumed that this dysregulation resolves rapidly after treatment, but this return to normality has been neither demonstrated nor quantified. We therefore measured a panel of plasma endothelial markers acutely and in convalescence in Malawian children with uncomplicated or cerebral malaria. Evidence of persistent endothelial activation and inflammation, indicated by increased plasma levels of soluble intracellular adhesion molecule 1, angiopoetin 2, and C-reactive protein, were observed at 1 month follow-up visits. These vascular changes may represent a previously unrecognized contributor to ongoing malaria-associated morbidity and mortality.

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Although CD8+ T cells do not contribute to protection against the blood stage of Plasmodium infection, there is mounting evidence that they are principal mediators of murine experimental cerebral malaria (ECM). At present, there is no direct evidence that the CD8+ T cells mediating ECM are parasite-specific or, for that matter, whether parasite-specific CD8+ T cells are generated in response to blood-stage infection. To resolve this and to define the cellular requirements for such priming, we generated transgenic P. berghei parasites expressing model T cell epitopes. This approach was necessary as MHC class I-restricted antigens to blood-stage infection have not been defined. Here, we show that blood-stage infection leads to parasite-specific CD8+ and CD4+ T cell responses. Furthermore, we show that P. berghei-expressed antigens are cross-presented by the CD8α+ subset of dendritic cells (DC), and that this induces pathogen-specific cytotoxic T lymphocytes (CTL) capable of lysing cells presenting antigens expressed by blood-stage parasites. Finally, using three different experimental approaches, we provide evidence that CTL specific for parasite-expressed antigens contribute to ECM.

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Plasmodium parasites remodel their vertebrate host cells by translocating hundreds of proteins across an encasing membrane into the host cell cytosol via a putative export machinery termed PTEX. Previously PTEX150, HSP101 and EXP2 have been shown to be bona fide members of PTEX.

Here we validate that PTEX88 and TRX2 are also genuine members of PTEX and provide evidence that expression of PTEX components are also expressed in early gametocytes, mosquito and liver stages, consistent with observations that protein export is not restricted to asexual stages. Although amenable to genetic tagging, HSP101, PTEX150, EXP2 and PTEX88 could not be genetically deleted in Plasmodium berghei, in keeping with the obligatory role this complex is postulated to have in maintaining normal blood-stage growth.

In contrast, the putative thioredoxin-like protein TRX2 could be deleted, with knockout parasites displaying reduced grow-rates, both in vivo and in vitro, and reduced capacity to cause severe disease in a cerebral malaria model. Thus, while not essential for parasite survival, TRX2 may help to optimize PTEX activity. Importantly, the generation of TRX2 knockout parasites that display altered phenotypes provides a much-needed tool to dissect PTEX function.

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Malária é uma das doenças infecciosas de maior causa de morte no mundo. Modelos experimentais são necessários para melhor compreensão de mecanismos envolvidos na patogênese de doenças e desenvolvimento de novos tratamentos. Galinhas infectadas com Plasmodium gallinaceum fornecem bom modelo de malária devido a proximidade filogenética com o Plasmodium de humano assim como aspectos clínicos comuns, como a malária cerebral. O presente estudo objetivou investigar a participação do óxido nítrico no desenvolvimento da malária aviária, através do tratamento ou não com aminoguanidina (AG - inibidor da enzima Óxido Nítrico Sintase) in vivo de galinhas infectadas experimentalmente com P. gallinaceum. Foi verificado sobrevida, hematologia clássica, bioquímica sérica e patologia nos animais no percurso da infecção. Observou-se maior sobrevida nos animais tratados com AG, apesar de parasitemias mais elevadas. Houve ainda diminuição nos parâmetros hematológicos e aumento no Volume Corpuscular Médio de hemácias, indicando resposta medular para anemia. Linfopenia e trombocitopenia foram detectadas em animais infectados, com menor proporção nos animais tratados. Monócitos, linfócitos e heterófilos apresentaram aumento de tamanho e alterações que indicam ativação. Trombócitos também aumentaram de tamanho durante a infecção e apresentaram morfologia atípica. Os animais tratados mostraram lesões mais brandas nas secções histopatológicas de cérebro, fígado e baço, além de produção diminuída de NO, mesmo em alta parasitemia, em relação aos animais não tratados. Esses resultados confirmam a participação do mediador químico óxido nítrico na patogênese da malária no modelo experimental aviário.

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A malária é uma doença infecciosa que atinge aproximadamente 40% da população mundial em mais de 100 países e consiste em um grave problema de saúde pública. As citocinas são moléculas importantes na resposta imune contra a malária e atuam através do estímulo ou inibição da ativação, proliferação e/ ou diferenciação de células, além de regularem a secreção de anticorpos e de outras citocinas. Nesse trabalho investigamos três polimorfismos de nucleotídeo único (SNP) que podem influenciar em uma maior ou menor síntese das citocinas TNF-a e IFN-g. Em relação à malária, os polimorfismos já foram associados com a malária grave, malária cerebral e anemia grave e também com outras doenças infecciosas, auto-imunes e com o câncer. Foram incluídos no estudo oitenta e um (81) pacientes com malária por Plasmodium vivax (primeira infecção) e cento e trinta (130) indivíduos sadios, ambos da população de Belém – PA. As freqüências genotípicas e alélicas foram pesquisadas através da técnica de discriminação alélica por PCR em tempo real e os resultados foram comparados entre os dois grupos. Parâmetros clínicos foram utilizados para tentar associar uma maior gravidade das manifestações da malária e a presença dos polimorfismos entre os pacientes. As freqüências foram semelhantes entre os dois grupos estudados. O alelo TNF-238*A não mostrou relação com nenhum dos parâmetros clínicos enquanto o alelo TNF-376*A estava relacionado com menores níveis plasmáticos de TNF-a e com uma menor intensidade dos sintomas. Os pacientes portadores do alelo IFN+874*A apresentaram menor intensidade da parasitemia. Assim os resultados obtidos não indicam associação dos polimorfismos com a ocorrência da malária na população estudada, mas com alguns dos parâmetros clínicos investigados, e podem auxiliar futuros estudos para tentar esclarecer como as mutações nos genes de citocinas podem influenciar na ocorrência e na evolução clínica da malária e de outras doenças infecciosas e parasitárias.

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Malária é uma das mais incidentes doenças infecciosas do mundo. Na Amazônia existem muitos casos de malária causados principalmente por duas espécies de protozoários, o Plasmodium vivax e o Plasmodium falciparum, sendo este último responsável pela maioria dos casos de malária grave, que geralmente levam a morte devido ao acometimento de múltiplos órgãos, como o cérebro. Um dos mediadores químicos amplamente estudados nessa patogênese é o Óxido Nítrico (NO), o qual apresenta papel controverso. Atualmente duas hipóteses principais são apontadas como potencializadoras na patogênese. Uma, que a MC é causa da superprodução de NO, produzido pela Óxido Nítrico Sintase Neuronal (nNOS), após um quadro de hipóxia. Outra, diz que a MC é a causa da resposta exacerbada do sistema imunológico com produção de NO pela Óxido Nítrico Sintase Induzida (iNOS), presente nos macrófagos quando ativados pro determinantes antigênicos. Devido grande relevância da doença e dificuldade em enteder a patologia, modelos experimentais têm sido estabelecidos com a finalidade de esclarecer vias potenciais da evolução para MC, dentre eles o modelo de malária aviária causada pelo Plasmodium gallinaceum. Pouco se sabe sobre o seu papel do NO em modelos de malária aviária, principalmente devido inexistência de marcadores específicos para avaliar expressão das enzimas de síntese. Diante disso é importante estabelecer protocolos de purificação da iNOS de galinhas para a produção de um possível marcador. Para tanto se faz necessário investigar o papel do NO durante a malária aviária, em modelo experimental in vivo e in vitro, com linhagens de macrófagos de galinha HD11. Animais infectados com P. gallinaceum tratados com aminoguanidina (AG), um inibidor da produção de NO, tiveram maior sobrevida, além de menores níveis de nitrito no plasma e em macrófagos derivados de monócitos do sangue periférico, sugerindo a inibição da iNOS. Nos experimentos in vitro, células HD11 tratadas com LPS mostraram produção aumentada de NO, inferindo aumento na expressão e atividade da iNOS. Na separação proteica, observamos padrões diferentes que podem ser associados a uma elevada expressão da iNOS nos macrófagos ativados com LPS. Esse estudo proporcionará o melhor entendimento do modelo de malária aviária em galinhas, incluindo a cerebral, e envolvimento do sistema nitrérgico em galinhas infectadas com P. gallinaceum.

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Cytokines are now recognized to play important roles in the physiology of the central nervous system (CNS) during health and disease. Tumor necrosis factor alpha (TNF-alpha) has been implicated in the pathogenesis of several human CNS disorders including multiple sclerosis, AIDS dementia, and cerebral malaria. We have generated transgenic mice that constitutively express a murine TNF-alpha transgene, under the control of its own promoter, specifically in their CNS and that spontaneously develop a chronic inflammatory demyelinating disease with 100% penetrance from around 3-8 weeks of age. High-level expression of the transgene was seen in neurons distributed throughout the brain. Disease is manifested by ataxia, seizures, and paresis and leads to early death. Histopathological analysis revealed infiltration of the meninges and CNS parenchyma by CD4+ and CD8+ T lymphocytes, widespread reactive astrocytosis and microgliosis, and focal demyelination. The direct action of TNF-alpha in the pathogenesis of this disease was confirmed by peripheral administration of a neutralizing anti-murine TNF-alpha antibody. This treatment completely prevented the development of neurological symptoms, T-cell infiltration into the CNS parenchyma, astrocytosis, and demyelination, and greatly reduced the severity of reactive microgliosis. These results demonstrate that overexpression of TNF-alpha in the CNS can cause abnormalities in nervous system structure and function. The disease induced in TNF-alpha transgenic mice shows clinical and histopathological features characteristic of inflammatory demyelinating CNS disorders in humans, and these mice represent a relevant in vivo model for their further study.

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Several immunomodulatory factors are involved in malaria pathogenesis. Among them, heme has been shown to play a role in the pathophysiology of severe malaria in rodents, but its role in human severe malaria remains unclear. Circulating levels of total heme and its main scavenger, hemopexin, along with cytokine/chemokine levels and biological parameters, including hemoglobin and creatinine levels, as well as transaminase activities, were measured in the plasma of 237 Plasmodium falciparum-infected patients living in the state of Odisha, India, where malaria is endemic. All patients were categorized into well-defined groups of mild malaria, cerebral malaria (CM), or severe noncerebral malaria, which included acute renal failure (ARF) and hepatopathy. Our results show a significant increase in total plasma heme levels with malaria severity, especially for CM and malarial ARF. Spearman rank correlation and canonical correlation analyses have shown a correlation between total heme, hemopexin, interleukin-10, tumor necrosis factor alpha, gamma interferon-induced protein 10 (IP-10), and monocyte chemotactic protein 1 (MCP-1) levels. In addition, canonical correlations revealed that heme, along with IP-10, was associated with the CM pathophysiology, whereas both IP-10 and MCP-1 together with heme discriminated ARF. Altogether, our data indicate that heme, in association with cytokines and chemokines, is involved in the pathophysiology of both CM and ARF but through different mechanisms.

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Plasmodium infection in human beings is often associated with complications. Complications such as cerebral malaria, acute respiratory distress syndrome, acute kidney injury and cardiac complications including myocarditis, pericarditis and hypoglycaemia may be seen in infection by Plasmodium falciparum. However, these complications have rarely been reported with Plasmodium vivax infections. Myopericarditis complicating P. vivax malaria is particularly rare and only a few cases have been reported so far. We report on a case of myopericarditis due to P. vivax malaria to add to the literature

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Structure-activity relationship studies were carried out by chemical modification of manzamine A (1), 8-hydroxymanzamine A (2), manzamine F (14), and ircinal isolated from the sponge Acanthostrongylophora. The derived analogues were evaluated for antimalarial, antimicrobial, and antineuroinflammatory activities. Several modified products exhibited potent and improved in vitro antineuroinflammatory, antimicrobial, and antimalarial activity. 1 showed improved activity against malaria compared to chloroquine in both multi- and single-dose in vivo experiments. The significant antimalarial potential was revealed by a 100% cure rate of malaria in mice with one administration of 100 mg/kg of 1. The potent antineuroinflammatory activity of the manzamines will provide great benefit for the prevention and treatment of cerebral infections (e.g., Cryptococcus and Plasmodium). In addition, 1 was shown to permeate across the blood-brain barrier (BBB) in an in vitro model using a MDR-MDCK monolayer. Docking studies support that 2 binds to the ATP-noncompetitive pocket of glycogen synthesis kinase-3beta (GSK-3beta), which is a putative target of manzamines. On the basis of the results presented here, it will be possible to initiate rational drug design efforts around this natural product scaffold for the treatment of several different diseases.