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1.
J Virol ; 94(11)2020 05 18.
Article in English | MEDLINE | ID: mdl-32213610

ABSTRACT

Ebola virus (EBOV) continues to pose a significant threat to human health, as evidenced by the 2013-2016 epidemic in West Africa and the ongoing outbreak in the Democratic Republic of the Congo. EBOV causes hemorrhagic fever, organ damage, and shock culminating in death, with case fatality rates as high as 90%. This high lethality combined with the paucity of licensed medical countermeasures makes EBOV a critical human pathogen. Although EBOV infection results in significant damage to the liver and the adrenal glands, little is known about the molecular signatures of injury in these organs. Moreover, while changes in peripheral blood cells are becoming increasingly understood, the host responses within organs and lymphoid tissues remain poorly characterized. To address this knowledge gap, we tracked longitudinal transcriptional changes in tissues collected from EBOV-Makona-infected cynomolgus macaques. Following infection, both liver and adrenal glands exhibited significant and early downregulation of genes involved in metabolism, coagulation, hormone synthesis, and angiogenesis; upregulated genes were associated with inflammation. Analysis of lymphoid tissues showed early upregulation of genes that play a role in innate immunity and inflammation and downregulation of genes associated with cell cycle and adaptive immunity. Moreover, transient activation of innate immune responses and downregulation of humoral immune responses in lymphoid tissues were confirmed with flow cytometry. Together, these data suggest that the liver, adrenal gland, and lymphatic organs are important sites of EBOV infection and that dysregulating the function of these vital organs contributes to the development of Ebola virus disease.IMPORTANCE Ebola virus (EBOV) remains a high-priority pathogen since it continues to cause outbreaks with high case fatality rates. Although it is well established that EBOV results in severe organ damage, our understanding of tissue injury in the liver, adrenal glands, and lymphoid tissues remains limited. We begin to address this knowledge gap by conducting longitudinal gene expression studies in these tissues, which were collected from EBOV-infected cynomolgus macaques. We report robust and early gene expression changes within these tissues, indicating they are primary sites of EBOV infection. Furthermore, genes involved in metabolism, coagulation, and adaptive immunity were downregulated, while inflammation-related genes were upregulated. These results indicate significant tissue damage consistent with the development of hemorrhagic fever and lymphopenia. Our study provides novel insight into EBOV-host interactions and elucidates how host responses within the liver, adrenal glands, and lymphoid tissues contribute to EBOV pathogenesis.


Subject(s)
Adrenal Glands , Ebolavirus , Gene Expression Regulation, Viral/immunology , Hemorrhagic Fever, Ebola , Liver , Lymphoid Tissue , Monkey Diseases , Transcription, Genetic/immunology , Adrenal Glands/immunology , Adrenal Glands/metabolism , Adrenal Glands/pathology , Adrenal Glands/virology , Animals , Ebolavirus/immunology , Ebolavirus/metabolism , Female , Hemorrhagic Fever, Ebola/immunology , Hemorrhagic Fever, Ebola/metabolism , Hemorrhagic Fever, Ebola/pathology , Hemorrhagic Fever, Ebola/veterinary , Liver/immunology , Liver/metabolism , Liver/pathology , Liver/virology , Lymphoid Tissue/immunology , Lymphoid Tissue/metabolism , Lymphoid Tissue/pathology , Lymphoid Tissue/virology , Macaca fascicularis , Male , Monkey Diseases/immunology , Monkey Diseases/metabolism , Monkey Diseases/pathology , Monkey Diseases/virology
2.
Sci Rep ; 9(1): 7329, 2019 May 08.
Article in English | MEDLINE | ID: mdl-31065012

ABSTRACT

A correction to this article has been published and is linked from the HTML and PDF versions of this paper. The error has not been fixed in the paper.

3.
Emerg Infect Dis ; 25(6): 1144-1152, 2019 06.
Article in English | MEDLINE | ID: mdl-31107231

ABSTRACT

Nipah virus (NiV) is a zoonotic pathogen that causes high case-fatality rates (CFRs) in humans. Two NiV strains have caused outbreaks: the Malaysia strain (NiVM), discovered in 1998-1999 in Malaysia and Singapore (≈40% CFR); and the Bangladesh strain (NiVB), discovered in Bangladesh and India in 2001 (≈80% CFR). Recently, NiVB in African green monkeys resulted in a more severe and lethal disease than NiVM. No NiV vaccines or treatments are licensed for human use. We assessed replication-restricted single-injection recombinant vesicular stomatitis vaccine NiV vaccine vectors expressing the NiV glycoproteins against NiVB challenge in African green monkeys. All vaccinated animals survived to the study endpoint without signs of NiV disease; all showed development of NiV F Ig, NiV G IgG, or both, as well as neutralizing antibody titers. These data show protective efficacy against a stringent and relevant NiVB model of human infection.


Subject(s)
Chlorocebus aethiops , Henipavirus Infections , Nipah Virus , Vesiculovirus , Viral Vaccines , Zoonoses , Animals , Female , Male , Henipavirus Infections/mortality , Henipavirus Infections/prevention & control , Henipavirus Infections/veterinary , Henipavirus Infections/virology , Immunity, Humoral , Monkey Diseases/pathology , Monkey Diseases/virology , Vesiculovirus/immunology , Viral Load , Viral Vaccines/immunology
4.
Front Immunol ; 8: 1372, 2017.
Article in English | MEDLINE | ID: mdl-29123522

ABSTRACT

Existing models of Ebola virus disease (EVD) suggest antigen-presenting cells are initial targets of Zaire ebolavirus (ZEBOV). In vitro studies have shown that ZEBOV infection of monocytes and macrophages results in the production of inflammatory mediators, which may cause lymphocyte apoptosis. However, these findings have not been corroborated by in vivo studies. In this study, we report the first longitudinal analysis of transcriptional changes in purified monocytes, T-cells, and B-cells isolated from cynomolgus macaques following infection with ZEBOV-Makona. Our data reveal monocytes as one of the major immune cell subsets that supports ZEBOV replication in vivo. In addition, we report a marked increase in the transcription of genes involved in inflammation, coagulation, and vascular disease within monocytes, suggesting that monocytes contribute to EVD manifestations. Further, genes important for antigen presentation and regulation of immunity were downregulated, potentially subverting development of adaptive immunity. In contrast, lymphocytes, which do not support ZEBOV replication, showed transcriptional changes limited to a small number of interferon-stimulated genes (ISGs) and a failure to upregulate genes associated with an antiviral effector immune response. Collectively, these data suggest that ZEBOV-infected monocytes play a significant role in ZEBOV-Makona pathogenesis and strategies to suppress virus replication or modify innate responses to infection in these cells should be a priority for therapeutic intervention.

5.
Sci Rep ; 7(1): 9730, 2017 08 29.
Article in English | MEDLINE | ID: mdl-28852031

ABSTRACT

Zaire Ebolavirus (ZEBOV) continues to pose a significant threat to human health as highlighted by the recent epidemic that originated in West Africa and the ongoing outbreak in the Democratic Republic of the Congo. Although the ZEBOV variant responsible for this epidemic (Makona) shares significant genetic similarity with previously identified variants (Kikwit and Mayinga), recent reports suggest slower disease progression in nonhuman primates. However, the pathogenesis caused by the new variant is not fully understood. We present the first comprehensive approach in understanding ZEBOV-Makona pathogenesis in cynomolgus macaques by measuring changes in immune cell frequencies, plasma levels of immune mediators, and differentially expressed genes (DEGs) within whole blood (WB) and peripheral blood mononuclear cells (PBMC). Our combined approach revealed a link between: 1) increased interferon-stimulated gene expression, IFNα levels, and activated plasmacytoid dendritic cells; 2) higher proinflammatory gene expression, cytokine and chemokine levels, and non-classical monocytes; 3) gene signature of leukocyte activation and increased granulocytes; and 4) decreased expression of lymphocyte related genes and lymphopenia. In addition, our data strongly indicate delayed disease progression as well as limited overlap (~30%) in host transcriptome changes following ZEBOV-Makona infection compared to ZEBOV-Kikwit. These observations provide novel insight into the molecular mechanisms of ZEBOV-Makona pathogenesis.


Subject(s)
Ebolavirus/immunology , Hemorrhagic Fever, Ebola/immunology , Hemorrhagic Fever, Ebola/virology , Host-Pathogen Interactions/immunology , Animals , Biomarkers , Democratic Republic of the Congo , Ebolavirus/classification , Gene Expression Profiling , Gene Regulatory Networks , Hemorrhagic Fever, Ebola/epidemiology , Hemorrhagic Fever, Ebola/genetics , Host-Pathogen Interactions/genetics , Humans , Immunity, Innate , Immunomodulation , Leukocytes, Mononuclear/immunology , Leukocytes, Mononuclear/metabolism , Leukocytes, Mononuclear/virology , Lymphocyte Activation/immunology , Lymphopenia/blood , Lymphopenia/etiology , Macaca fascicularis , Oxidative Stress , T-Lymphocyte Subsets/immunology , T-Lymphocyte Subsets/metabolism , Transcriptome , Virus Replication
6.
J Infect Dis ; 212 Suppl 2: S384-8, 2015 Oct 01.
Article in English | MEDLINE | ID: mdl-25957964

ABSTRACT

The filoviruses, Marburg marburgvirus (MARV), Zaire ebolavirus (ZEBOV), and Sudan ebolavirus (SEBOV), cause severe and often fatal hemorrhagic fever in humans and nonhuman primates (NHPs). Monovalent recombinant vesicular stomatitis virus (rVSV)-based vaccine vectors, which encode a filovirus glycoprotein (GP) in place of the VSV glycoprotein, have shown 100% efficacy against homologous filovirus challenge in rodent and NHP studies. Here, we examined the utility of a single-vector, single-injection trivalent rVSV vector expressing MARV, ZEBOV, and SEBOV GPs to protect against MARV-, ZEBOV-, and SEBOV-induced disease in outbred Hartley guinea pigs where we observed protection from effects of all 3 filoviruses.


Subject(s)
Filoviridae Infections/immunology , Filoviridae/immunology , Genetic Vectors/immunology , Viral Vaccines/immunology , Animals , Antibodies, Viral/immunology , Female , Filoviridae Infections/virology , Glycoproteins/immunology , Guinea Pigs , Vesiculovirus/immunology
7.
PLoS One ; 9(4): e94355, 2014.
Article in English | MEDLINE | ID: mdl-24759889

ABSTRACT

The filoviruses, Marburg virus (MARV) and Ebola virus, causes severe hemorrhagic fever with high mortality in humans and nonhuman primates. A promising filovirus vaccine under development is based on a recombinant vesicular stomatitis virus (rVSV) that expresses individual filovirus glycoproteins (GPs) in place of the VSV glycoprotein (G). These vaccines have shown 100% efficacy against filovirus infection in nonhuman primates when challenge occurs 28-35 days after a single injection immunization. Here, we examined the ability of a rVSV MARV-GP vaccine to provide protection when challenge occurs more than a year after vaccination. Cynomolgus macaques were immunized with rVSV-MARV-GP and challenged with MARV approximately 14 months after vaccination. Immunization resulted in the vaccine cohort of six animals having anti-MARV GP IgG throughout the pre-challenge period. Following MARV challenge none of the vaccinated animals showed any signs of clinical disease or viremia and all were completely protected from MARV infection. Two unvaccinated control animals exhibited signs consistent with MARV infection and both succumbed. Importantly, these data are the first to show 100% protective efficacy against any high dose filovirus challenge beyond 8 weeks after final vaccination. These findings demonstrate the durability of VSV-based filovirus vaccines.


Subject(s)
Marburgvirus/immunology , Vesicular Stomatitis/immunology , Vesicular Stomatitis/prevention & control , Animals , Ebola Vaccines/therapeutic use , Female , Immunity, Cellular/physiology , Immunity, Humoral/physiology , Macaca , Male , Marburg Virus Disease/immunology , Marburg Virus Disease/prevention & control , Marburg Virus Disease/virology , Marburgvirus/pathogenicity , Primates , Vesicular Stomatitis/virology , Viremia/immunology , Viremia/prevention & control , Viremia/virology
8.
Virol J ; 10: 353, 2013 Dec 13.
Article in English | MEDLINE | ID: mdl-24330654

ABSTRACT

BACKGROUND: Nipah virus (NiV) is a highly pathogenic zoonotic agent in the family Paramyxoviridae that is maintained in nature by bats. Outbreaks have occurred in Malaysia, Singapore, India, and Bangladesh and have been associated with 40 to 75% case fatality rates. There are currently no vaccines or postexposure treatments licensed for combating human NiV infection. METHODS AND RESULTS: Four groups of ferrets received a single vaccination with different recombinant vesicular stomatitis virus vectors expressing: Group 1, control with no glycoprotein; Group 2, the NiV fusion protein (F); Group 3, the NiV attachment protein (G); and Group 4, a combination of the NiV F and G proteins. Animals were challenged intranasally with NiV 28 days after vaccination. Control ferrets in Group 1 showed characteristic clinical signs of NiV disease including respiratory distress, neurological disorders, viral load in blood and tissues, and gross lesions and antigen in target tissues; all animals in this group succumbed to infection by day 8. Importantly, all specifically vaccinated ferrets in Groups 2-4 showed no evidence of clinical illness and survived challenged. All animals in these groups developed anti-NiV F and/or G IgG and neutralizing antibody titers. While NiV RNA was detected in blood at day 6 post challenge in animals from Groups 2-4, the levels were orders of magnitude lower than animals from control Group 1. CONCLUSIONS: These data show protective efficacy against NiV in a relevant model of human infection. Further development of this technology has the potential to yield effective single injection vaccines for NiV infection.


Subject(s)
Drug Carriers , Genetic Vectors , Henipavirus Infections/prevention & control , Nipah Virus/immunology , Vaccination/methods , Vesiculovirus/genetics , Viral Vaccines/immunology , Animals , Antibodies, Neutralizing/blood , Antibodies, Viral/blood , Disease Models, Animal , Female , Ferrets , Immunoglobulin G/blood , Nipah Virus/genetics , Survival Analysis , Vaccines, Synthetic/administration & dosage , Vaccines, Synthetic/genetics , Vaccines, Synthetic/immunology , Viral Proteins/genetics , Viral Proteins/immunology , Viral Vaccines/administration & dosage , Viral Vaccines/genetics
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