Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 9 de 9
Filter
Add more filters










Database
Language
Publication year range
1.
Article in English | MEDLINE | ID: mdl-32117812

ABSTRACT

In the protozoan pathogen Leishmania, endocytosis, and exocytosis occur mainly in the small area of the flagellar pocket membrane, which makes this parasite an interesting model of strikingly polarized internalization and secretion. Moreover, little is known about vesicle recognition and fusion mechanisms, which are essential for both endo/exocytosis in this parasite. In other cell types, vesicle fusion events require the activity of phospholipase A2 (PLA2), including Ca2+-independent iPLA2 and soluble, Ca2+-dependent sPLA2. Here, we studied the role of bromoenol lactone (BEL) inhibition of endo/exocytosis in promastigotes of Leishmania amazonensis. PLA2 activities were assayed in intact parasites, in whole conditioned media, and in soluble and extracellular vesicles (EVs) conditioned media fractions. BEL did not affect the viability of promastigotes, but reduced the differentiation into metacyclic forms. Intact parasites and EVs had BEL-sensitive iPLA2 activity. BEL treatment reduced total EVs secretion, as evidenced by reduced total protein concentration, as well as its size distribution and vesicles in the flagellar pocket of treated parasites as observed by TEM. Membrane proteins, such as acid phosphatases and GP63, became concentrated in the cytoplasm, mainly in multivesicular tubules of the endocytic pathway. BEL also prevented the endocytosis of BSA, transferrin and ConA, with the accumulation of these markers in the flagellar pocket. These results suggested that the activity inhibited by BEL, which is one of the irreversible inhibitors of iPLA2, is required for both endocytosis and exocytosis in promastigotes of L. amazonensis.


Subject(s)
Leishmania , Pyrones , Endocytosis , Exocytosis , Naphthalenes
2.
Acta Parasitol ; 65(1): 108-117, 2020 Mar.
Article in English | MEDLINE | ID: mdl-31755068

ABSTRACT

BACKGROUND: Protozoa are distantly related to vertebrates but present some features of higher eukaryotes, making them good model systems for studying the evolution of basic processes such as the cell cycle. Herpetomonas samuelpessoai is a trypanosomatid parasite isolated from the hemipteran insect Zelus leucogrammus. Lysophosphatidylcholine (LPC) is implicated in the transmission and establishment of Chagas disease, whose etiological agent is Trypanosoma cruzi. LPC is synthesized by T. cruzi and its vectors, the hemipteran Rhodnius prolixus and Triatoma infestans. Platelet-activating factor (PAF), a phospholipid with potent and diverse physiological and pathophysiological actions, is a powerful inducer of cell differentiation in Herpetomonas muscarum muscarum and T. cruzi. The enzyme phospholipase A2 (PLA2) catalyzes the hydrolysis of the 2-ester bond of 3-sn-phosphoglyceride, transforming phosphatidylcholine (PC) into LPC. METHODS: In this study, we evaluated cellular differentiation, PLA2 activity and protein kinase CK2 activity of H. samuelpessoai in the absence and in the presence of LPC and PAF. RESULTS: We demonstrate that both PC and LPC promoted a twofold increase in the cellular differentiation of H. samuelpessoai, through CK2, with a concomitant inhibition of its cell growth. Intrinsic PLA2 most likely directs this process by converting PC into LPC. CONCLUSIONS: Our results suggest that the actions of LPC on H. samuelpessoai occur upon binding to a putative PAF receptor and that the protein kinase CK2 plays a major role in this process. Cartoon depicting a model for the synthesis and functions of LPC in Herpetomonas samuelpessoai, based upon our results regarding the role of LPC on the cell biology of Trypanosoma cruzi [28-32]. N nucleus, k kinetoplast, PC phosphatidylcholine, LPC lysophosphatidylcholine, PLA2 phospholipase A2, PAFR putative PAF receptor in trypanosomatids [65], CK2 protein kinase CK2 [16].


Subject(s)
Casein Kinase II/metabolism , Cell Differentiation , Lysophosphatidylcholines/metabolism , Metabolic Networks and Pathways , Trypanosomatina/physiology , Animals , Dichlororibofuranosylbenzimidazole/pharmacology , Enzyme Inhibitors/pharmacology , Hemiptera/parasitology , Phospholipases A2/metabolism , Triazoles/pharmacology , Trypanosomatina/drug effects
3.
PLoS Negl Trop Dis ; 8(10): e3252, 2014 Oct.
Article in English | MEDLINE | ID: mdl-25330220

ABSTRACT

BACKGROUND: The neglected human diseases caused by trypanosomatids are currently treated with toxic therapy with limited efficacy. In search for novel anti-trypanosomatid agents, we showed previously that the Crotalus viridis viridis (Cvv) snake venom was active against infective forms of Trypanosoma cruzi. Here, we describe the purification of crovirin, a cysteine-rich secretory protein (CRISP) from Cvv venom with promising activity against trypanosomes and Leishmania. METHODOLOGY/PRINCIPAL FINDINGS: Crude venom extract was loaded onto a reverse phase analytical (C8) column using a high performance liquid chromatographer. A linear gradient of water/acetonitrile with 0.1% trifluoroacetic acid was used. The peak containing the isolated protein (confirmed by SDS-PAGE and mass spectrometry) was collected and its protein content was measured. T. cruzi trypomastigotes and amastigotes, L. amazonensis promastigotes and amastigotes and T. brucei rhodesiense procyclic and bloodstream trypomastigotes were challenged with crovirin, whose toxicity was tested against LLC-MK2 cells, peritoneal macrophages and isolated murine extensor digitorum longus muscle. We purified a single protein from Cvv venom corresponding, according to Nano-LC MS/MS sequencing, to a CRISP of 24,893.64 Da, henceforth referred to as crovirin. Human infective trypanosomatid forms, including intracellular amastigotes, were sensitive to crovirin, with low IC50 or LD50 values (1.10-2.38 µg/ml). A considerably higher concentration (20 µg/ml) of crovirin was required to elicit only limited toxicity on mammalian cells. CONCLUSIONS: This is the first report of CRISP anti-protozoal activity, and suggests that other members of this family might have potential as drugs or drug leads for the development of novel agents against trypanosomatid-borne neglected diseases.


Subject(s)
Crotalid Venoms/pharmacology , Leishmania mexicana/drug effects , Reptilian Proteins/pharmacology , Trypanosoma brucei rhodesiense/drug effects , Trypanosoma cruzi/drug effects , Animals , Antiprotozoal Agents/pharmacology , Carrier Proteins , Chagas Disease/drug therapy , Crotalus/metabolism , Cytoplasm , Electrophoresis, Polyacrylamide Gel , Humans , LIM Domain Proteins , Leishmania , Leishmania mexicana/growth & development , Mice , Neglected Diseases/drug therapy , Neglected Diseases/parasitology , Parasitic Sensitivity Tests , Tandem Mass Spectrometry , Trypanosoma brucei rhodesiense/growth & development , Trypanosoma cruzi/growth & development
4.
Toxicon ; 69: 227-39, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23562368

ABSTRACT

Antimicrobial peptides (AMPs) are components of the innate immune response that represent desirable alternatives to conventional pharmaceuticals, as they have a fast mode of action, a low likelihood of resistance development and can act in conjunction with existing drug regimens. AMPs exhibit strong inhibitory activity against both Gram-positive and Gram-negative bacteria, fungi, viruses, metazoans and other parasites, such as the protozoan Leishmania. Melittin is a naturally occurring AMP, which comprises 40-50% of the dry weight of Apis mellifera venom. Our group has recently shown that crude A. mellifera venom is lethal to Trypanosoma cruzi, the Chagas disease etiologic agent, and generates a variety of cell death phenotypes among treated parasites. Here, we demonstrate that the melittin affected all of T. cruzi developmental forms, including the intracellular amastigotes. The ultrastructural changes induced by melittin suggested the occurrence of different programmed cell death pathways, as was observed in A. mellifera-treated parasites. Autophagic cell death appeared to be the main death mechanism in epimastigotes. In contrast, melittin-treated trypomastigotes appeared to be dying via an apoptotic mechanism. Our findings confirm the great potential of AMPs, including melittin, as a potential source of new drugs for the treatment of neglected diseases, such as Chagas disease.


Subject(s)
Bee Venoms/pharmacology , Cell Death/drug effects , Melitten/pharmacology , Trypanosoma cruzi/drug effects , Animals , Bees/metabolism , Cell Line , Cell Line, Tumor , Chagas Disease/drug therapy , Chagas Disease/parasitology , Haplorhini , Humans , Mice , Microscopy, Electron, Scanning , Microscopy, Electron, Transmission , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/ultrastructure
5.
Parasitology ; 139(11): 1444-61, 2012 Sep.
Article in English | MEDLINE | ID: mdl-23025900

ABSTRACT

Chagas disease chemotherapy is based on drugs that exhibit toxic effects and have limited efficacy, such as Benznidazole. Therefore, research into new chemotherapeutic agents from natural sources needs to be exploited. Apis mellifera venom consists of many biologically active molecules and has been reported to exhibit remarkable anti-cancer effects, often promoting an apoptosis-like death phenotype. This study demonstrates that A. mellifera venom can affect the growth, viability and ultrastructure of all Trypanosoma cruzi developmental forms, including intracellular amastigotes, at concentrations 15- to 100-fold lower than those required to cause toxic effects in mammalian cells. The ultrastructural changes induced by the venom in the different developmental forms led us to hypothesize the occurrence of different programmed cell death pathways. Autophagic cell death, characterized by the presence of autophagosomes-like organelles and a strong monodansyl cadaverine labelling, appears to be the main death mechanism in epimastigotes. In contrast, increased TUNEL staining, abnormal nuclear chromatin condensation and kDNA disorganization was observed in venom-treated trypomastigotes, suggesting cell death by an apoptotic mechanism. On the other hand, intracellular amastigotes presented a heterogeneous cell death phenotype profile, where apoptosis-like death seemed to be predominant. Our findings confirm the great potential of A. mellifera venom as a source for the development of new drugs for the treatment of neglected diseases such as Chagas disease.


Subject(s)
Bee Venoms/pharmacology , Cell Death/drug effects , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/drug effects , Animals , Cell Line , In Situ Nick-End Labeling , Microscopy, Electron, Scanning , Microscopy, Electron, Transmission , Trypanosoma cruzi/ultrastructure
6.
Biomed Pharmacother ; 66(3): 180-6, 2012 Apr.
Article in English | MEDLINE | ID: mdl-22440898

ABSTRACT

Polyamine biosynthesis and inhibition in parasites have been an attractive chemotherapeutic approach in the design of novel antiparasitic drugs. We study in this work the effect of N-dodecyl-1,2-ethylenediamine (NDDE) on the morphology and replication of Leishmania using macrophages cultured from the peritoneal exudate of mice infected in vitro with three species of Leishmania: Leishmania (Leishmania) amazonensis, Leishmania (Viannia) brasiliensis and Leishmania (Leishmania) chagasi. The results showed that NDDE inhibited Leishmania amastigotes multiplication into inflammatory peritoneal cells in concentrations which were not toxic to mammalian cells (0.5-1µg/mL). An intracellular disorganization of the promastigote forms was observed by transmission electron microscopy after 3 to 24h of treatment with 1µg/mL NDDE, suggesting that this compound affects the viability of the parasite by an autophagy pathway.


Subject(s)
Antiprotozoal Agents/pharmacology , DNA Replication/drug effects , Ethylenediamines/pharmacology , Leishmania/drug effects , Animals , Cell Line, Tumor , Cells, Cultured , Humans , Leishmania/ultrastructure , Macrophages, Peritoneal/drug effects , Mice , Mice, Inbred BALB C , Parasites/drug effects
7.
Parasitology ; 138(1): 46-58, 2011 Jan.
Article in English | MEDLINE | ID: mdl-20663246

ABSTRACT

Chagas' disease, caused by Trypanosoma cruzi, affects 16-18 million people in Central and South America. Patient treatment is based on drugs that have toxic effects and limited efficacy. Therefore, new chemotherapeutic agents need to be developed. Snake venoms are sources of natural compounds used in various medical treatments. We observed that Crotalus viridis viridis venom was effective against all developmental forms of T. cruzi. Ultrastructural analysis revealed swelling of mitochondria, blebbing and disruption of the plasma membrane, loss of cytoplasm components and morphological changes of the cell. Staining with propidium iodide and rhodamine 123 confirmed the observed alterations in the plasma and mitochondrial membranes, respectively. The effects of the venom on the parasite intracellular cycle were also analysed. Pre-infected LLC-MK2 cells incubated with Cvv venom showed a 76-93% reduction in the number of parasites per infected cell and a 94-97.4% reduction in the number of parasites per 100 cells after 96 h of infection. Free trypomastigotes harvested from the supernatants of Cvv venom-treated cells were incapable of initiating a new infection cycle. Our data demonstrate that Cvv venom can access the host cell cytoplasm at concentrations that cause toxicity only to the amastigote forms of T. cruzi, and yields altered parasites with limited infective capacity, suggesting the potential use of Cvv venom in Chagas' disease chemotherapy.


Subject(s)
Cell Membrane/ultrastructure , Chagas Disease/parasitology , Crotalid Venoms/pharmacology , Crotalus , Cytoplasm/ultrastructure , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/drug effects , Trypanosoma cruzi/ultrastructure , Animals , Cell Membrane/drug effects , Cell Membrane/metabolism , Crotalid Venoms/metabolism , Cytoplasm/drug effects , Cytoplasm/metabolism , Mitochondria/drug effects , Mitochondria/metabolism , Mitochondria/ultrastructure , Trypanocidal Agents/metabolism , Trypanosoma cruzi/metabolism
8.
Acta Trop ; 101(1): 69-79, 2007 Jan.
Article in English | MEDLINE | ID: mdl-17250794

ABSTRACT

L-Amino acid methyl esters, such as L-leucine methyl ester (Leu-OMe), have been identified as agents targeting the lysosomal system of Leishmania amazonensis amastigotes, by a mechanism that involves ester hydrolysis by parasite enzymes located inside megasomes. We have here analyzed the effect of Leu-OMe on all three evolutive forms of Trypanosoma cruzi, in a search for potential targets of the compound in this protozoan. Treatment of epimastigote forms resulted in dose-dependent growth inhibition, with IC50/1 day = 0.55 +/- 0.21 mM. Incubation with 4-8mM/1 day led to 100% cell death. Treatment of bloodstream trypomastigotes resulted in cell lysis, with an IC50/1 day = 1.46 +/- 0.16 mM. Furthermore, infected macrophages treated with 0.125-1mM Leu-OMe showed a dose- and time-dependent decrease in the percent of amastigote infection. Morphological changes in macrophages were observed only at concentrations above 8mM, at the third day of treatment. Analysis of treated parasites by transmission electron microscopy demonstrated severe morphological alterations in cell shape, mitochondrion and nucleus, while kinetoplast and reservosomes (pre-lysosomal compartments) appeared to be not affected. Lysis of bloodstream trypomastigotes and intracellular amastigotes indicated that lysosomes of T. cruzi are the main target for the drug, since reservosomes occur only in epimastigote forms. The presence of lysosomes in T. cruzi epimastigotes was demonstrated by using ultrastructural cytochemistry.


Subject(s)
Antiprotozoal Agents/pharmacology , Chagas Disease/parasitology , Leucine/analogs & derivatives , Trypanosoma cruzi/drug effects , Trypanosoma cruzi/growth & development , Animals , Chagas Disease/drug therapy , Dose-Response Relationship, Drug , Flow Cytometry , Inhibitory Concentration 50 , Leucine/pharmacology , Macrophages, Peritoneal/parasitology , Mice , Microscopy, Confocal , Microscopy, Electron, Scanning , Microscopy, Electron, Transmission , Trypanosoma cruzi/ultrastructure
9.
Micron ; 38(3): 252-6, 2007.
Article in English | MEDLINE | ID: mdl-16860560

ABSTRACT

Lysosomes of trypanosomatid protozoa are poorly known. In this work we have cytochemically detected the lysosomal enzyme aryl sulphatase in the trypanosomatids Trypanosoma cruzi and Crithidia fasciculata, by using p-nitrocatecholsulphate as substrate. Positive reaction was located exclusively inside membrane-bound cytoplasmic vesicles distributed throughout the cell body. Electron-dense reaction was either dispersed homogeneously through the vesicular matrix or located at the vesicle periphery, apposed to the membrane, with fine granular deposits occasionally found at the vesicular matrix. Trypomastigote and epimastigote forms of T. cruzi lacked electron-dense deposits at the plasma membrane, thus indicating that aryl sulphatase was not secreted to the environment. Furthermore, no positive reaction was detected in epimastigote reservosomes, which are organelles considered as pre-lysosomal compartments. Thus, our data show that reservosomes and lysosomes are organelles that can be distinguished by the cytochemical localization of aryl sulphatase in T. cruzi epimastigotes and trypomastigotes. Positive reaction in cytoplasmic vesicles of C. fasciculata choanomastigotes confirmed the specificity of the reaction for lysosomes in other trypanosomatid species.


Subject(s)
Arylsulfatases/analysis , Crithidia fasciculata/ultrastructure , Histocytochemistry/methods , Lysosomes/chemistry , Lysosomes/ultrastructure , Trypanosoma cruzi/ultrastructure , Animals , Catechols/metabolism , Microscopy, Electron, Transmission , Staining and Labeling/methods
SELECTION OF CITATIONS
SEARCH DETAIL
...