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1.
PLoS Pathog ; 16(8): e1008699, 2020 08.
Article in English | MEDLINE | ID: mdl-32764827

ABSTRACT

São Paulo, a densely inhabited state in southeast Brazil that contains the fourth most populated city in the world, recently experienced its largest yellow fever virus (YFV) outbreak in decades. YFV does not normally circulate extensively in São Paulo, so most people were unvaccinated when the outbreak began. Surveillance in non-human primates (NHPs) is important for determining the magnitude and geographic extent of an epizootic, thereby helping to evaluate the risk of YFV spillover to humans. Data from infected NHPs can give more accurate insights into YFV spread than when using data from human cases alone. To contextualise human cases, identify epizootic foci and uncover the rate and direction of YFV spread in São Paulo, we generated and analysed virus genomic data and epizootic case data from NHPs in São Paulo. We report the occurrence of three spatiotemporally distinct phases of the outbreak in São Paulo prior to February 2018. We generated 51 new virus genomes from YFV positive cases identified in 23 different municipalities in São Paulo, mostly sampled from NHPs between October 2016 and January 2018. Although we observe substantial heterogeneity in lineage dispersal velocities between phylogenetic branches, continuous phylogeographic analyses of generated YFV genomes suggest that YFV lineages spread in São Paulo at a mean rate of approximately 1km per day during all phases of the outbreak. Viral lineages from the first epizootic phase in northern São Paulo subsequently dispersed towards the south of the state to cause the second and third epizootic phases there. This alters our understanding of how YFV was introduced into the densely populated south of São Paulo state. Our results shed light on the sylvatic transmission of YFV in highly fragmented forested regions in São Paulo state and highlight the importance of continued surveillance of zoonotic pathogens in sentinel species.


Subject(s)
Genome, Viral , Primate Diseases/virology , Yellow Fever/veterinary , Yellow Fever/virology , Yellow fever virus/genetics , Zoonoses/virology , Animals , Brazil/epidemiology , Disease Outbreaks , Genomics , Humans , Phylogeny , Phylogeography , Primate Diseases/epidemiology , Primate Diseases/transmission , Primates/virology , Yellow Fever/epidemiology , Yellow Fever/transmission , Yellow fever virus/classification , Yellow fever virus/isolation & purification , Zoonoses/epidemiology , Zoonoses/transmission
2.
Ann Neurol ; 81(1): 152-156, 2017 Jan.
Article in English | MEDLINE | ID: mdl-27977881

ABSTRACT

Recent advances in the understanding of neuropathogenesis associated with Zika virus (ZIKV) infection has led to descriptions of neonatal microcephaly cases. However, none of these reports have evaluated the humoral response during ZIKV infection. We report here polyfunctional immune activation associated with increased interferon-gamma-inducible protein 10, interleukin (IL)-6, IL-8, vascular endothelial growth factor (VEGF), monocyte chemoattractive protein 1 (MCP-1), and granulocyte colony-stimulating factor (G-CSF) levels in the amniotic fluid of ZIKV-positive pregnant women with neonatal microcephaly. These cytokines have been associated not only with neuronal damage, but also with differentiation and proliferation of neural progenitor cells. Our results suggested that the immune activation caused by ZIKV infection in the uterine environment could also interfere with fetal development. ANN NEUROL 2017;81:152-156.


Subject(s)
Amniotic Fluid/immunology , Microcephaly/etiology , Microcephaly/immunology , Zika Virus Infection/complications , Zika Virus Infection/immunology , Adolescent , Adult , Amniotic Fluid/metabolism , Case-Control Studies , Chemokine CCL2/metabolism , Chemokine CXCL10/metabolism , Female , Granulocyte Colony-Stimulating Factor/metabolism , Humans , Inflammation Mediators/metabolism , Interleukin-6/metabolism , Interleukin-8/metabolism , Microcephaly/metabolism , Microcephaly/pathology , Neural Stem Cells/cytology , Neural Stem Cells/immunology , Neural Stem Cells/metabolism , Pregnancy , Vascular Endothelial Growth Factor A/metabolism , Young Adult , Zika Virus Infection/metabolism , Zika Virus Infection/pathology
3.
Ann Biomed Eng ; 46(12): 1963-1974, 2018 Dec.
Article in English | MEDLINE | ID: mdl-30003503

ABSTRACT

Recent global epidemics of viral infection such as Zika virus (ZIKV) and associated birth defects from maternal-fetal viral transmission highlights the critical unmet need for experimental models that adequately recapitulates the biology of the human maternal-fetal interface and downstream fetal development. Herein, we report an in vitro biomimetic placenta-fetus model of the maternal-fetal interface and downstream fetal cells. Using a tissue engineering approach, we built a 3D model incorporating placental trophoblast and endothelial cells into an extracellular matrix environment and validated formation of the maternal-fetal interface. We utilized this model to study ZIKV exposure to the placenta and neural progenitor cells. Our results indicated ZIKV infects both trophoblast and endothelial cells, leading to a higher viral load exposed to fetal cells downstream of the barrier. Viral inhibition by chloroquine reduced the amount of virus both in the placenta and transmitted to fetal cells. A sustained downstream neural cell viability in contrast to significantly reduced viability in an acellular model indicates that the placenta sequesters ZIKV consistent with clinical observations. These findings suggest that the placenta can modulate ZIKV exposure-induced fetal damage. Moreover, such tissue models can enable rigorous assessment of potential therapeutics for maternal-fetal medicine.


Subject(s)
Fetus , Infectious Disease Transmission, Vertical , Models, Biological , Placenta , Pregnancy Complications, Infectious , Zika Virus Infection , Zika Virus/metabolism , Female , Fetus/embryology , Fetus/pathology , Fetus/virology , Humans , Placenta/metabolism , Placenta/pathology , Placenta/virology , Pregnancy , Pregnancy Complications, Infectious/metabolism , Pregnancy Complications, Infectious/pathology , Zika Virus Infection/embryology , Zika Virus Infection/pathology , Zika Virus Infection/transmission
4.
Front Microbiol ; 8: 2557, 2017.
Article in English | MEDLINE | ID: mdl-29312238

ABSTRACT

Zika virus (ZIKV) has been associated to central nervous system (CNS) harm, and virus was detected in the brain and cerebrospinal fluids of microcephaly and meningoencephalitis cases. However, the mechanism by which the virus reaches the CNS is unclear. Here, we addressed the effects of ZIKV replication in human brain microvascular endothelial cells (HBMECs), as an in vitro model of blood brain barrier (BBB), and evaluated virus extravasation and BBB integrity in an in vivo mouse experimental model. HBMECs were productively infected by African and Brazilian ZIKV strains (ZIKVMR766 and ZIKVPE243), which induce increased production of type I and type III IFN, inflammatory cytokines and chemokines. Infection with ZIKVMR766 promoted earlier cellular death, in comparison to ZIKVPE243, but infection with either strain did not result in enhanced endothelial permeability. Despite the maintenance of endothelial integrity, infectious virus particles crossed the monolayer by endocytosis/exocytosis-dependent replication pathway or by transcytosis. Remarkably, both viruses' strains infected IFNAR deficient mice, with high viral load being detected in the brains, without BBB disruption, which was only detected at later time points after infection. These data suggest that ZIKV infects and activates endothelial cells, and might reach the CNS through basolateral release, transcytosis or transinfection processes. These findings further improve the current knowledge regarding ZIKV dissemination pathways.

5.
PLoS One ; 9(11): e113691, 2014.
Article in English | MEDLINE | ID: mdl-25423108

ABSTRACT

Nef is an HIV-1 accessory protein that promotes viral replication and pathogenesis. A key function of Nef is to ensure sustained depletion of CD4 and MHC-I molecules in infected cells by inducing targeting of these proteins to multivesicular bodies (MVBs), and ultimately to lysosomes for degradation. Nef also affects cellular secretory routes promoting its own secretion via exosomes. To better understand the effects of Nef on the exocytic pathway, we investigated whether this viral factor modifies the composition of exosomes released by T lymphocytes. We showed that both CD4 and MHC-I molecules are secreted in exosomes from T cells and that the expression of Nef reduces the amount of these proteins in exosomes. To investigate the functional role for this novel activity of Nef, we performed in vitro HIV-1 infection assays in the presence of distinct populations of exosomes. We demonstrated that exosomes released by CD4+ T cells, but not CD4- T cells, efficiently inhibit HIV-1 infection in vitro. Because CD4 is the main receptor for HIV-1 infection, these results suggest that CD4 molecules displayed on the surface of exosomes can bind to envelope proteins of HIV-1 hindering virus interaction with target cells and infection. Importantly, CD4-depleted exosomes released by CD4+ T cells expressing Nef have a reduced capacity to inhibit HIV-1 infection in vitro. These results provide evidence that Nef promotes HIV-1 infection by reducing the expression of CD4 in exosomes from infected cells, besides the original role of Nef in reducing the CD4 levels at the cell surface.


Subject(s)
CD4-Positive T-Lymphocytes/immunology , Exosomes/immunology , Gene Products, nef/immunology , HIV Infections/immunology , Cell Line , Down-Regulation , HEK293 Cells , HIV-1 , Humans , Major Histocompatibility Complex/immunology , Microscopy, Fluorescence
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