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1.
Mem. Inst. Oswaldo Cruz ; 112(12): 850-856, Dec. 2017. tab, graf
Article in English | LILACS | ID: biblio-1040565

ABSTRACT

BACKGROUND The surface of infected red blood cells (iRBCs) has been widely investigated because of the molecular complexity and pathogenesis mechanisms involved. Asymptomatic individuals are important in the field because they can perpetuate transmission as natural reservoirs and present a challenge for diagnosing malaria because of their low levels of circulating parasites. Recent studies of iRBC antibody recognition have shown that responses are quantitatively similar in symptomatic and asymptomatic infections, but no studies have characterised the plasmodial proteins targeted by this response. OBJECTIVES Our main objective was to identify Plasmodium falciparum proteins associated with iRBC ghosts recognised by antibodies in the sera of symptomatic and asymptomatic individuals in the Brazilian Amazon. METHODS We collected symptomatic and asymptomatic sera from patients residing in the Brazilian Amazon and P. falciparum iRBC ghosts to identify the proteins involved in natural antibody recognition by 2D-electrophoresis, western blotting, and high- resolution mass spectrometry. FINDINGS 2D gel-based immunoproteome analysis using symptomatic and asymptomatic sera identified 11 proteins with at least one unique peptide, such as chaperones HSP70-1 and HSP70-x, which likely are components of the secretion machinery/PTEX translocon. PfEMP1 is involved in antigenic variation in symptomatic infections and we found putative membrane proteins whose functions are unknown. MAIN FINDINGS Our results suggest a potential role of old and new proteins, such as antigenic variation proteins, iRBC remodelling, and membrane proteins, with no assigned functions related to the immune response against P. falciparum, providing insights into the pathogenesis, erythrocyte remodelling, and secretion machinery important for alternative diagnosis and/or malaria therapy.


Subject(s)
Humans , Plasmodium falciparum/immunology , Antibodies, Protozoan/genetics , Erythrocyte Membrane/parasitology , Antigens, Protozoan/genetics , Plasmodium falciparum/genetics , Mass Spectrometry , Antibodies, Protozoan/immunology , Electrophoresis, Gel, Two-Dimensional , Blotting, Western , Proteomics , Erythrocyte Membrane/immunology , Asymptomatic Infections , Antigens, Protozoan/immunology
2.
Mem. Inst. Oswaldo Cruz ; 93(1): 115-20, Jan.-Feb. 1998. ilus
Article in English | LILACS | ID: lil-202005

ABSTRACT

Little is known about the molecular mechanisms underlying the release of merozoites from malaria infected erythrocytes. In this study membranous structures present in the culture medium at the time of merozoite release have been characterized. Biochemical and ultrastructural evidence indicate that membranous structures consist of the infected erythrocytes membrane, the parasitophorous vacuolar membrane and the residual body containing electron dense material. These are subcellular compartments expected in a structure that arises as a consequence of merozoite release from the infected cell. Ultrastrutural studies show that a novel structure extends from the former parasite compartment to the membrane. Since these membrane modifications are detected only after merozoites have been released from the infected erythrocyte, it is proposed that they might play a role in the release of merozoites from the host cell.


Subject(s)
Animals , Erythrocytes/parasitology , Erythrocyte Membrane/parasitology , Plasmodium falciparum/growth & development , Malaria, Falciparum , Membrane Fusion
3.
Anon.
Mem. Inst. Oswaldo Cruz ; 89(suppl.2): 99-109, 1994.
Article in English | LILACS | ID: lil-321773

ABSTRACT

The intraerythrocytic malarial parasite is involved in an extremely intensive anabolic activity while it resides in its metabolically quiescent host cell. The necessary fast uptake of nutrients and the discharge of waste product, are guaranteed by parasite-induced alterations of the constitutive transporters of the host cell and the production of new parallel pathways. The membrane of the host cell thus becomes permeable to phospholipids, purine bases and nucleosides, small non-electrolytes, anions and cations. When the new pathways are quantitatively unimportant, classical inhibitors of native transporters can be used to inhibit parasite growth. Several compounds were found to effectively inhibit the new pathways and consequently, parasite growth. The pathways have also been used to introduce cytotoxic agents. The parasitophorous membrane consists of channels which are highly permeable to small solutes and display no ion selectivity. Transport of some cations and anions across the parasite membrane is rapid and insensitive to classical inhibitors, and in some cases it is mediated by specific antiporters which respond to their respective inhibitors. Macromolecules have been shown to reach the parasitophorous space through a duct contiguous with the host cell membrane, and subsequently to be endocytosed at the parasite membrane. The simultaneous presence of the parasitophorous membrane channels and the duct, however, is incompatible with experimental evidences. No specific inhibitors were found as yet that would efficiently inhibit transport through the channels or the duct.


Subject(s)
Animals , Malaria , Plasmodium falciparum , Cell Membrane Permeability , Erythrocyte Membrane/chemistry , Erythrocyte Membrane/metabolism , Erythrocyte Membrane/parasitology , Phospholipids , Host-Parasite Interactions
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