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1.
Front Immunol ; 13: 810376, 2022.
Article in English | MEDLINE | ID: mdl-35185902

ABSTRACT

Exacerbated inflammatory response and altered vascular function are hallmarks of dengue disease. Reactive oxygen species (ROS) production has been associated to endothelial barrier disturbance and microvascular alteration in distinct pathological conditions. Increased ROS has been reported in in vitro models of dengue virus (DENV) infection, but its impact for endothelial cell physiology had not been fully investigated. Our group had previously demonstrated that infection of human brain microvascular endothelial cells (HBMEC) with DENV results in the activation of RNA sensors and production of proinflammatory cytokines, which culminate in cell death and endothelial permeability. Here, we evaluated the role of mitochondrial function and NADPH oxidase (NOX) activation for ROS generation in HBMEC infected by DENV and investigated whether altered cellular physiology could be a consequence of virus-induced oxidative stress. DENV-infected HBMECs showed a decrease in the maximal respiratory capacity and altered membrane potential, indicating functional mitochondrial alteration, what might be related to mtROS production. Indeed, mtROS was detected at later time points after infection. Specific inhibition of mtROS diminished virus replication, cell death, and endothelial permeability, but did not affect cytokine production. On the other hand, inhibition of NOX-associated ROS production decreased virus replication and cell death, as well as the secretion of inflammatory cytokines, including IL-6, IL-8, and CCL5. These results demonstrated that DENV replication in endothelial cells induces ROS production by different pathways, which impacts biological functions that might be relevant for dengue pathogenesis. Those data also indicate oxidative stress events as relevant therapeutical targets to avoid vascular permeability, inflammation, and neuroinvasion during DENV infection.


Subject(s)
Antiviral Agents/pharmacology , Dengue Virus/drug effects , Endothelium, Vascular/virology , Reactive Oxygen Species/metabolism , Virus Replication/drug effects , Capillary Permeability/drug effects , Cell Line , Cells, Cultured , Cytokines/metabolism , Dengue/immunology , Dengue/virology , Dengue Virus/genetics , Endothelium, Vascular/drug effects , Humans , Oxidative Stress/drug effects
2.
Free Radic Biol Med ; 173: 104-116, 2021 09.
Article in English | MEDLINE | ID: mdl-34303829

ABSTRACT

BACKGROUND: Chloroquine has been used successfully to treat Malaria, including by chloroquine-resistant Plasmodium sp., indicating that it has effects on disease itself. Since heme has inflammatory effects and contributes to the pathogenesis of hemolytic diseases, we hypothesize that the anti-inflammatory effect of chloroquine is partially due to its inhibitory effect on heme-induced macrophage activation and on inflammatory tissue damage. METHODS: Bone marrow derived macrophages (BMDMs) were incubated with chloroquine before stimulation with heme, in different conditions, to evaluate cytokines secretion, ROS production, mitogen activated protein kinases (MAPK) or spleen tyrosine kinase (Syk) activation, alone or combined with LPS. The effects of chloroquine upon heme inflammation were also evaluated in vivo, through simultaneous i.p. injection of LPS and heme, intratracheal instillation of Poly-IC followed by heme injection, and in a rhabdomyolysis model. RESULTS: Chloroquine inhibited TNF secretion, mitochondrial ROS production, MAPK, and Syk activation induced by heme. Inhibition of TNF production could be mimicked by zinc ionophore quercetin, but not by primaquine, a chloroquine analog with low affinity for heme. IL-6 and IL-1ß secretions induced by heme in the presence of PRRs agonists were inhibited by chloroquine, but not by calcium chelator BAPTA or inhibitor of endosomal acidification concamycin B. Chloroquine also protected mice from heme inflammatory effects in vivo, inhibiting lethal synergism with PRR agonists, lung pathology caused by heme injection after intratracheal instillation of Poly-IC, and delaying death after rhabdomyolisis. CONCLUSION: Our data indicate that chloroquine might be used as a supportive therapy to control heme-induced deleterious inflammation in different hemolytic diseases.


Subject(s)
Chloroquine , Heme , Animals , Cytokines , Lipopolysaccharides/toxicity , Macrophage Activation , Macrophages , Mice
3.
Exp Parasitol ; 204: 107727, 2019 Sep.
Article in English | MEDLINE | ID: mdl-31344389

ABSTRACT

BACKGROUND: Trypanosoma rangeli is a protozoan parasite that is non-virulent to the mammalian host and is morphologically and genomically related to Trypanosoma cruzi, whose proliferation within the mammalian host is controversially discussed. OBJECTIVES: We aimed to investigate the T. rangeli cell cycle in vitro and in vivo by characterizing the timespan of the parasite life cycle and by proposing a molecular marker to assess cytokinesis. METHODOLOGY: The morphological events and their timing during the cell cycle of T. rangeli epimastigotes were assessed using DNA staining, flagellum labelling and bromodeoxyuridine incorporation. Messenger RNA levels of four genes previously associated with the cell cycle of trypanosomatids (AUK1, PLK, MOB1 and TRACK) were evaluated in the different T. rangeli forms. FINDINGS: T. rangeli epimastigotes completed the cell cycle in vitro in 20.8 h. PLK emerged as a potential molecular marker for cell division, as its mRNA levels were significantly increased in exponentially growing epimastigotes compared with growth-arrested parasites or in vitro-differentiated trypomastigotes. PLK expression in T. rangeli can be detected near the flagellum protrusion site, reinforcing its role in the cell cycle. Interestingly, T. rangeli bloodstream trypomastigotes exhibited very low mRNA levels of PLK and were almost entirely composed of parasites in G1 phase. MAIN CONCLUSIONS: Our work is the first to describe the T. rangeli cell cycle in vitro and proposes that PLK mRNA levels could be a useful tool to investigate the T. rangeli ability to proliferate within the mammalian host bloodstream.


Subject(s)
Cell Cycle Proteins/genetics , Cell Cycle/genetics , Cytokinesis/physiology , Protein Serine-Threonine Kinases/genetics , Proto-Oncogene Proteins/genetics , RNA, Messenger/analysis , Trypanosoma rangeli/cytology , Animals , Bromodeoxyuridine/metabolism , Cell Cycle/drug effects , Cytokinesis/genetics , DNA, Protozoan/chemistry , DNA, Protozoan/isolation & purification , Flow Cytometry , Fluorescent Antibody Technique , Hydroxyurea/pharmacology , Mice , Mice, Inbred BALB C , Nucleic Acid Synthesis Inhibitors/pharmacology , RNA, Protozoan/genetics , RNA, Protozoan/isolation & purification , Time Factors , Trypanosoma rangeli/drug effects , Trypanosoma rangeli/enzymology , Trypanosoma rangeli/genetics , Trypanosomiasis/parasitology , Polo-Like Kinase 1
4.
PLoS Negl Trop Dis ; 8(9): e3176, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25233456

ABSTRACT

BACKGROUND: Trypanosoma rangeli is a hemoflagellate protozoan parasite infecting humans and other wild and domestic mammals across Central and South America. It does not cause human disease, but it can be mistaken for the etiologic agent of Chagas disease, Trypanosoma cruzi. We have sequenced the T. rangeli genome to provide new tools for elucidating the distinct and intriguing biology of this species and the key pathways related to interaction with its arthropod and mammalian hosts. METHODOLOGY/PRINCIPAL FINDINGS: The T. rangeli haploid genome is ∼ 24 Mb in length, and is the smallest and least repetitive trypanosomatid genome sequenced thus far. This parasite genome has shorter subtelomeric sequences compared to those of T. cruzi and T. brucei; displays intraspecific karyotype variability and lacks minichromosomes. Of the predicted 7,613 protein coding sequences, functional annotations could be determined for 2,415, while 5,043 are hypothetical proteins, some with evidence of protein expression. 7,101 genes (93%) are shared with other trypanosomatids that infect humans. An ortholog of the dcl2 gene involved in the T. brucei RNAi pathway was found in T. rangeli, but the RNAi machinery is non-functional since the other genes in this pathway are pseudogenized. T. rangeli is highly susceptible to oxidative stress, a phenotype that may be explained by a smaller number of anti-oxidant defense enzymes and heat-shock proteins. CONCLUSIONS/SIGNIFICANCE: Phylogenetic comparison of nuclear and mitochondrial genes indicates that T. rangeli and T. cruzi are equidistant from T. brucei. In addition to revealing new aspects of trypanosome co-evolution within the vertebrate and invertebrate hosts, comparative genomic analysis with pathogenic trypanosomatids provides valuable new information that can be further explored with the aim of developing better diagnostic tools and/or therapeutic targets.


Subject(s)
Genome, Protozoan , Phylogeny , Trypanosoma rangeli/genetics , Animals , Base Sequence , DNA, Protozoan/genetics , Haploidy , Humans
5.
Mem Inst Oswaldo Cruz ; 107(6): 713-9, 2012 Sep.
Article in English | MEDLINE | ID: mdl-22990958

ABSTRACT

Protein tyrosine phosphatases (PTPs) play an essential role in the regulation of cell differentiation in pathogenic trypanosomatids. In this study, we describe a PTP expressed by the non-pathogenic protozoan Trypanosoma rangeli (TrPTP2). The gene for this PTP is orthologous to the T. brucei TbPTP1 and Trypanosoma cruzi (TcPTP2) genes. Cloning and expression of the TrPTP2 and TcPTP2 proteins allowed anti-PTP2 monoclonal antibodies to be generated in BALB/c mice. When expressed by T. rangeli epimastigotes and trypomastigotes, native TrPTP2 is detected as a ~65 kDa protein associated with the parasite's flagellum. Given that the flagellum is an important structure for cell differentiation in trypanosomatids, the presence of a protein responsible for tyrosine dephosphorylation in the T. rangeli flagellum could represent an interesting mechanism of regulation in this structure.


Subject(s)
Antibodies, Monoclonal/immunology , Flagella/enzymology , Protein Tyrosine Phosphatases/metabolism , Trypanosoma rangeli/enzymology , Animals , Immunization , Mice , Mice, Inbred BALB C , Phylogeny , Protein Tyrosine Phosphatases/genetics , Trypanosoma rangeli/genetics , Trypanosoma rangeli/immunology
6.
Mem. Inst. Oswaldo Cruz ; 107(6): 713-719, set. 2012. ilus, tab
Article in English | LILACS | ID: lil-649484

ABSTRACT

Protein tyrosine phosphatases (PTPs) play an essential role in the regulation of cell differentiation in pathogenic trypanosomatids. In this study, we describe a PTP expressed by the non-pathogenic protozoan Trypanosoma rangeli (TrPTP2). The gene for this PTP is orthologous to the T. brucei TbPTP1 and Trypanosoma cruzi (TcPTP2) genes. Cloning and expression of the TrPTP2 and TcPTP2 proteins allowed anti-PTP2 monoclonal antibodies to be generated in BALB/c mice. When expressed by T. rangeli epimastigotes and trypomastigotes, native TrPTP2 is detected as a ~65 kDa protein associated with the parasite's flagellum. Given that the flagellum is an important structure for cell differentiation in trypanosomatids, the presence of a protein responsible for tyrosine dephosphorylation in the T. rangeli flagellum could represent an interesting mechanism of regulation in this structure.


Subject(s)
Animals , Mice , Antibodies, Monoclonal/immunology , Flagella/enzymology , Protein Tyrosine Phosphatases/metabolism , Trypanosoma rangeli/enzymology , Immunization , Mice, Inbred BALB C , Phylogeny , Protein Tyrosine Phosphatases/genetics , Trypanosoma rangeli/genetics , Trypanosoma rangeli/immunology
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