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1.
Cell ; 184(20): 5163-5178.e24, 2021 09 30.
Article in English | MEDLINE | ID: mdl-34559985

ABSTRACT

Rift Valley fever virus (RVFV) is a zoonotic pathogen with pandemic potential. RVFV entry is mediated by the viral glycoprotein (Gn), but host entry factors remain poorly defined. Our genome-wide CRISPR screen identified low-density lipoprotein receptor-related protein 1 (mouse Lrp1/human LRP1), heat shock protein (Grp94), and receptor-associated protein (RAP) as critical host factors for RVFV infection. RVFV Gn directly binds to specific Lrp1 clusters and is glycosylation independent. Exogenous addition of murine RAP domain 3 (mRAPD3) and anti-Lrp1 antibodies neutralizes RVFV infection in taxonomically diverse cell lines. Mice treated with mRAPD3 and infected with pathogenic RVFV are protected from disease and death. A mutant mRAPD3 that binds Lrp1 weakly failed to protect from RVFV infection. Together, these data support Lrp1 as a host entry factor for RVFV infection and define a new target to limit RVFV infections.


Subject(s)
Host-Pathogen Interactions , Low Density Lipoprotein Receptor-Related Protein-1/metabolism , Rift Valley fever virus/physiology , Virus Internalization , Animals , Antibody Specificity/immunology , Base Sequence , Brain/pathology , Brain/virology , CRISPR-Cas Systems/genetics , Cell Membrane/metabolism , Cells, Cultured , Glycoproteins/metabolism , Glycosaminoglycans/metabolism , Glycosylation , Humans , LDL-Receptor Related Protein-Associated Protein/metabolism , Ligands , Low Density Lipoprotein Receptor-Related Protein-1/deficiency , Membrane Glycoproteins/metabolism , Mice , Protein Binding , Protein Denaturation , Rift Valley Fever/pathology , Rift Valley Fever/prevention & control , Rift Valley Fever/virology , Rift Valley fever virus/immunology
2.
PLoS Pathog ; 18(6): e1009946, 2022 06.
Article in English | MEDLINE | ID: mdl-35696423

ABSTRACT

Venezuelan equine encephalitis virus (VEEV) is a positively-stranded RNA arbovirus of the genus Alphavirus that causes encephalitis in humans. Cynomolgus macaques are a relevant model of the human disease caused by VEEV and are useful in exploring pathogenic mechanisms and the host response to VEEV infection. Macaques were exposed to small-particle aerosols containing virus derived from an infectious clone of VEEV strain INH-9813, a subtype IC strain isolated from a human infection. VEEV-exposed macaques developed a biphasic fever after infection similar to that seen in humans. Maximum temperature deviation correlated with the inhaled dose, but fever duration did not. Neurological signs, suggestive of virus penetration into the central nervous system (CNS), were predominantly seen in the second febrile period. Electroencephalography data indicated a statistically significant decrease in all power bands and circadian index during the second febrile period that returned to normal after fever resolved. Intracranial pressure increased late in the second febrile period. On day 6 post-infection macaques had high levels of MCP-1 and IP-10 chemokines in the CNS, as well as a marked increase of T lymphocytes and activated microglia. More than four weeks after infection, VEEV genomic RNA was found in the brain, cerebrospinal fluid and cervical lymph nodes. Pro-inflammatory cytokines & chemokines, infiltrating leukocytes and pathological changes were seen in the CNS tissues of macaques euthanized at these times. These data are consistent with persistence of virus replication and/or genomic RNA and potentially, inflammatory sequelae in the central nervous system after resolution of acute VEEV disease.


Subject(s)
Encephalitis Virus, Venezuelan Equine , Encephalomyelitis, Venezuelan Equine , Animals , Central Nervous System , Encephalitis Virus, Venezuelan Equine/genetics , Horses/genetics , Inflammation , Macaca fascicularis , RNA, Viral/genetics
3.
PLoS Pathog ; 17(2): e1009308, 2021 02.
Article in English | MEDLINE | ID: mdl-33534855

ABSTRACT

Aerosol exposure to eastern equine encephalitis virus (EEEV) can trigger a lethal viral encephalitis in cynomolgus macaques which resembles severe human disease. Biomarkers indicative of central nervous system (CNS) infection by the virus and lethal outcome of disease would be useful in evaluating potential medical countermeasures, especially for therapeutic compounds. To meet requirements of the Animal Rule, a better understanding of the pathophysiology of EEEV-mediated disease in cynomolgus macaques is needed. In this study, macaques given a lethal dose of clone-derived EEEV strain V105 developed a fever between 2-3 days post infection (dpi) and succumbed to the disease by 6 dpi. At the peak of the febrile phase, there was a significant increase in the delta electroencephalography (EEG) power band associated with deep sleep as well as a sharp rise in intracranial pressure (ICP). Viremia peaked early after infection and was largely absent by the onset of fever. Granulocytosis and elevated plasma levels of IP-10 were found early after infection. At necropsy, there was a one hundred- to one thousand-fold increase in expression of traumatic brain injury genes (LIF, MMP-9) as well as inflammatory cytokines and chemokines (IFN-γ, IP-10, MCP-1, IL-8, IL-6) in the brain tissues. Phenotypic analysis of leukocytes entering the brain identified cells as primarily lymphoid (T, B, NK cells) with lower levels of infiltrating macrophages and activated microglia. Massive amounts of infectious virus were found in the brains of lethally-infected macaques. While no infectious virus was found in surviving macaques, quantitative PCR did find evidence of viral genomes in the brains of several survivors. These data are consistent with an overwhelming viral infection in the CNS coupled with a tremendous inflammatory response to the infection that may contribute to the disease outcome. Physiological monitoring of EEG and ICP represent novel methods for assessing efficacy of vaccines or therapeutics in the cynomolgus macaque model of EEEV encephalitis.


Subject(s)
Aerosols/adverse effects , Biomarkers/analysis , Brain/immunology , Brain/pathology , Encephalitis Virus, Eastern Equine/pathogenicity , Encephalitis, Viral/immunology , Fever/immunology , Animals , Brain/virology , Cytokines/metabolism , Disease Models, Animal , Encephalitis, Viral/pathology , Encephalitis, Viral/virology , Female , Fever/pathology , Fever/virology , Macaca fascicularis , Male
4.
J Gen Virol ; 102(2)2021 02.
Article in English | MEDLINE | ID: mdl-33231535

ABSTRACT

The zoonotic emerging Rift Valley fever virus (RVFV) causes sporadic disease in livestock and humans throughout Africa and the Saudi Arabian peninsula. Infection of people with RVFV can occur through mosquito bite or mucosal exposure during butchering or milking of infected livestock. Disease typically presents as a self-limiting fever; however, in rare cases, hepatitis, encephalitis and ocular disease may occur. Recent studies have illuminated the neuropathogenic mechanisms of RVFV in a rat aerosol infection model. Neurological disease in rats is characterized by breakdown of the blood-brain barrier late in infection, infiltration of leukocytes to the central nervous system (CNS) and massive viral replication in the brain. However, the route of RVFV entry into the CNS after inhalational exposure remains unknown. Here, we visualized the entire nasal olfactory route from snout to brain after RVFV infection using RNA in situ hybridization and immunofluorescence microscopy. We found widespread RVFV-infected cells within the olfactory epithelium, across the cribriform plate, and in the glomerular region of the olfactory bulb within 2 days of infection. These results indicate that the olfactory tract is a major route of infection of the brain after inhalational exposure. A better understanding of potential neuroinvasion pathways can support the design of more effective therapeutic regiments for the treatment of neurological disease caused by RVFV.


Subject(s)
Encephalitis, Viral/virology , Ethmoid Bone/virology , Olfactory Mucosa/virology , Rift Valley Fever/pathology , Rift Valley fever virus/physiology , Animals , Disease Models, Animal , Encephalitis, Viral/pathology , Ethmoid Bone/pathology , Female , Inhalation Exposure , Olfactory Mucosa/pathology , Rats , Rats, Inbred Lew , Rift Valley Fever/virology
5.
PLoS Pathog ; 15(6): e1007833, 2019 06.
Article in English | MEDLINE | ID: mdl-31220182

ABSTRACT

Rift Valley fever virus (RVFV) causes severe disease in livestock concurrent with zoonotic transmission to humans. A subset of people infected with RVFV develop encephalitis, and significant gaps remain in our knowledge of how RVFV causes pathology in the brain. We previously found that, in Lewis rats, subcutaneous inoculation with RVFV resulted in subclinical disease while inhalation of RVFV in a small particle aerosol caused fatal encephalitis. Here, we compared the disease course of RVFV in Lewis rats after each different route of inoculation in order to understand more about pathogenic mechanisms of fatal RVFV encephalitis. In aerosol-infected rats with lethal encephalitis, neutrophils and macrophages were the major cell types infiltrating the CNS, and this was concomitant with microglia activation and extensive cytokine inflammation. Despite this, prevention of neutrophil infiltration into the brain did not ameliorate disease. Unexpectedly, in subcutaneously-inoculated rats with subclinical disease, detectable viral RNA was found in the brain along with T-cell infiltration. This study sheds new light on the pathogenic mechanisms of RVFV encephalitis.


Subject(s)
Brain/immunology , Encephalitis, Viral/immunology , Macrophages/immunology , Neutrophil Infiltration , Neutrophils/immunology , Rift Valley Fever/immunology , Rift Valley fever virus/immunology , Aerosols , Animals , Brain/pathology , Brain/virology , Cell Line , Cytokines/immunology , Encephalitis, Viral/pathology , Female , Humans , Macrophages/pathology , Neutrophils/pathology , Rats , Rats, Inbred Lew , Rift Valley Fever/pathology
6.
bioRxiv ; 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38854055

ABSTRACT

Rift Valley fever virus (RVFV) infection causes abortions in ruminant livestock and is associated with an increased likelihood of miscarriages in women. Using sheep and human placenta explant cultures, we sought to identify tissues at the maternal-fetal interface targeted by RVFV. Sheep villi and fetal membranes were highly permissive to RVFV infection resulting in markedly higher virus titers than human cultures. Sheep cultures were most permissive to wild-type RVFV and ΔNSm infection, while live attenuated RVFV vaccines (LAVs; MP-12, ΔNSs, and ΔNSs/ΔNSm) exhibited reduced replication. The human fetal membrane restricted wild-type and LAV replication, and when infection occurred, it was prominent in the maternal-facing side. Type-I and type-III interferons were induced in human villi exposed to LAVs lacking the NSs protein. This study supports the use of sheep and human placenta explants to understand vertical transmission of RVFV in mammals and whether LAVs are attenuated at the maternal-fetal interface.

7.
PLoS Negl Trop Dis ; 16(10): e0010898, 2022 10.
Article in English | MEDLINE | ID: mdl-36315601

ABSTRACT

Rift Valley fever (RVF) is a disease of animals and humans associated with abortions in ruminants and late-gestation miscarriages in women. Here, we use a rat model of congenital RVF to identify tropisms, pathologies, and immune responses in the placenta during vertical transmission. Infection of late-gestation pregnant rats resulted in vertical transmission to the placenta and widespread infection throughout the decidua, basal zone, and labyrinth zone. Some pups from infected dams appeared normal while others had gross signs of teratogenicity including death. Histopathological lesions were detected in placenta from pups regardless of teratogenicity, while teratogenic pups had widespread hemorrhage throughout multiple placenta layers. Teratogenic events were associated with significant increases in placental pro-inflammatory cytokines, type I interferons, and chemokines. RVFV displays a high degree of tropism for all placental tissue layers and the degree of hemorrhage and inflammatory mediator production is highest in placenta from pups with adverse outcomes. Given the potential for RVFV to emerge in new locations and the recent evidence of emerging viruses, like Zika and SARS-CoV-2, to undergo vertical transmission, this study provides essential understanding regarding the mechanisms by which RVFV crosses the placenta barrier.


Subject(s)
COVID-19 , Rift Valley Fever , Rift Valley fever virus , Zika Virus Infection , Zika Virus , Humans , Female , Pregnancy , Rats , Animals , Rats, Sprague-Dawley , Placenta/pathology , SARS-CoV-2 , Ruminants
8.
Sci Adv ; 4(12): eaau9812, 2018 12.
Article in English | MEDLINE | ID: mdl-30525107

ABSTRACT

Rift Valley fever virus (RVFV) infections in pregnant livestock cause high rates of fetal demise; miscarriage in pregnant women has also been associated with RVFV infection. To address how RVFV infection during pregnancy causes detrimental effects on the fetus, we developed a pregnant rodent model of RVFV infection. We found that pregnant rats were more susceptible to RVFV-induced death than their nonpregnant counterparts and that RVFV infection resulted in intrauterine fetal death and severe congenital abnormalities, even in pups from infected asymptomatic pregnant rats. Virus distribution in infected dams was widespread, with a previously unrecognized preference for infection, replication, and tissue damage in the placenta. In human mid-gestation placental tissue, RVFV directly infected placental chorionic villi, with replication detected in the outermost syncytial layer. Our work identifies direct placental infection by RVFV as a mechanism for vertical transmission. This is the first study to show vertical transmission of RVFV with a lethal outcome in a species other than livestock. This study highlights the potential impact of a future epidemic of this emerging mosquito-borne virus.


Subject(s)
Fetal Death/etiology , Placenta/virology , Pregnancy Complications, Infectious , Rift Valley Fever/complications , Rift Valley Fever/virology , Rift Valley fever virus , Animals , Cell Line , Disease Models, Animal , Disease Susceptibility , Female , Humans , Infectious Disease Transmission, Vertical , Liver/pathology , Liver/virology , Placenta/pathology , Pregnancy , Rats , Rats, Sprague-Dawley , Rift Valley Fever/transmission , Rift Valley fever virus/genetics
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