SUMMARY Effective control of viral encephalitis requires immune responses that clear infection without causing damaging neuroinflammation, yet the mechanisms governing resolution and recovery remain unclear. Using a Japanese encephalitis virus mouse model spanning asymptomatic, symptomatic, and lethal trajectories, together with single-cell spatial transcriptomics and RNA-seq, we identify apolipoprotein E (ApoE) as a driver of neuroinflammation resolution. Apoe was upregulated in microglia and infiltrating myeloid cells of symptomatic survivors, where Apoe-Trem2-Tyrobp signalling promoted a phagocytic, anti-inflammatory program. In contrast, immune cells in lethal disease failed to induce Apoe and remained pro-inflammatory. ApoE-deficient mice were unable to recover following encephalitis onset, demonstrating that ApoE signalling is essential for resolution and recovery. Analysis of cerebrospinal fluid from acute encephalitis patients linked APOE isoforms to neuroinflammation resolution, with APOEε2 carriers exhibiting reduced neutrophils and shorter hospitalisation. These findings identify ApoE as a critical driver of neuroinflammation resolution and a promising therapeutic target for viral encephalitis.
In 2022, Australia saw an unprecedented outbreak of Japanese encephalitis virus genotype IV (JEV GIV). The outbreak involved 42 human cases with 7 fatalities, as well as affecting >80 pig farms in New South Wales and Queensland. Herein, we designed, constructed, and tested two JEV GIV mRNA vaccines encoding prME, which provided protection against a lethal JEV GIV challenge in an Ifnar-/- mouse model. The vaccines were not codon optimized and included either the Native (full-length) or a Shorter signal peptide, with the latter missing the N-terminal n-region. Two vaccinations with 5 µg of the Shorter vaccine provided neutralizing antibody responses that were significantly lower but overlapped with those seen after vaccination with Imojev, a live attenuated vaccine approved for use in humans. Both mRNA vaccines provided approximately a five to six log reduction in viremia, ≥80% protection against overt disease and weight loss, and mortality. The paper illustrates in-country mRNA vaccine generation in response to a local outbreak, with JEV mRNA vaccines potentially emerging to be easier to manufacture, cheaper, and more suitable for immunocompromised individuals.
Getah virus (GETV) is a mosquito borne Old World alphavirus that has recently increased its geographic range, particularly in China. GETV causes rheumatic disease in horses, but in recent years its primary impact has been lethal infections in newborn piglets. Herein we characterize a lethal Ifnar1-/- mouse model of GETV, which recapitulated many of the features seen in piglets. These include lethality, high viremia, diarrhoea, and splenomegaly, with histopathological findings aligning with those seen in piglets and indicating severe, acute, multi-organ inflammatory immunopathology. RNA-Seq of spleens from GETV infected Ifnar1-/- mice and subsequent bioinformatic analyses illustrated a cytokine storm response that included robust type I interferon signatures and a pattern of cytokine/chemokine signatures indicative of viral sepsis/septic shock. Ifnar1-/- mice thus offer a framework for understanding, and a mouse model for, GETV disease in piglets. The model also indicates that lethal GETV infection in piglets ay involve viral sepsis/septic shock.
N-linked glycosylation of flavivirus envelope proteins is widely viewed as being required for optimal folding, processing and/or transit of envelope proteins, and the assembling virons, through the endoplasmic reticulum (ER) and the Golgi. Zika virus (ZIKV) has a single N-linked envelope glycan located adjacent to the fusion loop. Herein we show that independent serial passage of ZIKVNatal in Rag1 -/- mice for 223 or 386 days generated two unique envelope glycan-deficient mutants, ZIKV-V153D and ZIKV-N154D, respectively. Surprisingly, these mutants grew to titres ∼1 to 2.6 logs higher than the glycosylated parental ZIKVNatal in Vero E6 cells and human brain organoids. RNA-Seq of infected organoids suggested that this increased replication fitness was associated with upregulation of the unfolded protein response (UPR). Cell death, cellular viral RNA, and viral protein levels were not significantly affected, arguing that these glycan mutants enjoyed faster ER/Golgi folding, processing, assembly, transit, and virion egress, assisted by an upregulated UPR. Thus, ZIKV envelope N-linked glycosylation is not essential for promoting envelope folding, assembly, and transit through the ER/Golgi, since aspartic acid (D) substitutions in the glycosylation motif can achieve this with significantly greater efficiency. Instead, the evolution of glycan mutants in Rag1 -/- mice indicates that such envelope glycosylation can have a fitness cost in an environment devoid of virus-specific antibody responses. The V153D and N154D mutations, generated by natural selection in Rag1 -/- mice, have to date not been employed in orthoflavivirus envelope glycosylation studies. Instead, genetic engineering has been used to generate mutant viruses that, for instance, contain a N154A substitution. The latter may impart confounding unfavourable properties, such as envelope protein insolubility, that have a detrimental impact on virus replication. The V153D and N154D substitutions may avoid imparting unfavourable properties by preserving the surface negative charge provided by the glycan moiety in the parental ZIKVNatal envelope protein. In Ifnar1 -/- mice ZIKV-V153D and -N154D showed faster viremia onsets, but reduced viremic periods, than the parental ZIKVNatal, consistent with an established contention that such glycans have evolved to delay neutralizing antibody activity.
We describe RNA-Seq analyses conducted on nasopharyngeal swabs collected from 37 patients admitted to an Australian intensive care unit from October 2022 to August 2023. During this time, the dominant omicron sublineage infections broadly progressed from BA.5 to BA.2-like, to XBB-like, then XBC, consistent with global trends. Viral load and patient metadata correlations indicated this cohort was broadly representative of severe COVID-19 patients. Human gene expression analyses were complicated by the large range (>5 log) and variability in viral reads. Nevertheless, the comparison of XBC and BA.5 samples that had comparable viral read counts, revealed differentially expressed genes and a cellular deconvolution signature that indicated increased targeting of ciliated epithelial cells by XBC. To obtain more evidence for increased targeting of ciliated epithelial cells by the later omicron sublineage viruses, a series of mouse strains were infected with a BA.5 or a XBB isolate. Increased infection of the nasal turbinates and ciliated epithelial cells by XBB was demonstrated by viral titrations and immunohistochemistry, respectively. Compared with previous lineages, the omicron lineage showed increased targeting of ciliated epithelia in the upper respiratory tract, with the data presented herein suggesting this trend continued for the omicron sublineages.
Murray Valley encephalitis virus (MVEV) is a zoonotic flavivirus endemic to Australia and Papua New Guinea. A recent outbreak of MVEV has prompted renewed concerns regarding the potential for MVEV to generate disease outbreaks. Currently, nine full length sequences of MVEV are publicly available, divided into four genotypes (G1-G4). Herein, we sequenced MVEV isolates from the Ralph Doherty Virus Collection, a virus bank with Australian field isolates dating between the 1950s-1980s, and determined their phylogenetic relationship with existing isolates to provide insights into virus evolution and genetic diversity. Additionally, we characterised isolates from different genotypes both in vitro using human neuronal cells, and in vivo using C57BL/6J mice, to provide additional insight into MVEV pathogenicity and establish models of MVEV disease that recapitulate MVEV human disease. We found 15 new full length sequences of MVEV, which primarily clustered into the dominant genotype, G1. Additionally, we show MVEV can be lethal and neuroinvasive in C57BL/6J mice, recapitulating histological lesions identified in human infection. Overall, our study contributes significant genomic sequences to the current MVEV database and establishes mouse models of disease and infection which can be used for mechanistic studies and evaluation of new interventions. ### Competing Interest Statement The authors have declared no competing interest. National Health and Medical Research Council, https://ror.org/011kf5r70, APP1173880
Herein, we explore the potential influence of Schistosoma mansoni Sambon, 1907 soluble egg antigen (SmSEA) on the immunopathology of COVID-19 in K18-hACE2 mice infected with an Omicron BA.5 isolate of SARS-CoV-2. SmSEA treatment was delivered in a single dose by intraperitoneal injection, shortly after intrapulmonary inoculation of SARS-CoV-2. RNA-seq identified 36 differentially expressed genes in the spleens of virus-infected mice treated with SmSEA vs. PBS on day 5 post infection. Ingenuity Pathway Analysis of these genes suggested marginal modulation of cytokine responses, with upregulation of the IL-10 and IL-4 signatures and downregulation of the IFNγ signature. However, cytokine responses and histopathology in the lungs were largely unaffected. Future work will require purification of active helminth compounds and dosing and scheduling optimisation.
Arthritogenic alphaviruses such as chikungunya virus (CHIKV) and Ross River virus (RRV) are mosquito-borne viruses that can cause debilitating polyarthritis/polyarthralgia in humans. Although two CHIKV vaccines have been licensed, there are no licensed vaccines for RRV. Herein we generate a host-restricted, insect-specific alphavirus, Yada Yada virus (YYV), chimeric vaccine for CHIKV (YYV-CHIKVMauritius) and for RRV (YYV-RRVTT). YYV-CHIKVMauritius and YYV-RRVTT was able to replicate in C6/36 mosquito cells to similar titres as wild-type CHIKV and RRV. YYV-CHIKVMauritius was also neutralised by CHIKV monoclonal antibodies to the same titres as wild-type CHIKV, indicating its potential as a diagnostic antigen to detect neutralising CHIKV antibodies in human or animal sera. YYV-CHIKVMauritius further demonstrated protection against CHIKV infection and disease in a wild-type mouse model. Two doses of YYV-CHIKVMauritius showed anti-CHIKV ELISA and neutralising antibody responses, with protection against foot swelling, viraemia and viral feet tissue titres. Protection against CHIKV histopathology including myositis, tendonitis, arthritis, subcutaneous oedema and haemorrhage was also observed. YYV-RRVTT also demonstrated protection against RRV infection and disease in a wild-type mouse model, with two vaccine doses inducing anti-RRV ELISA and neutralising antibody responses. Protection against foot swelling, viraemia and viral feet tissue titres and RRV histopathology including myositis, tendonitis, arthritis and subcutaneous oedema was also observed. Cross-protection was also evaluated between YYV-CHIKVMauritius and RRV. Although cross-reactive total IgG were observed for YYV-CHIKVMauritius vaccinated mice, this offered no cross-neutralising antibodies and no protection against RRV infection and disease. Overall, our findings show that YYV-CHIKVMauritius and YYV-RRVTT are safe and efficacious vaccines against CHIKV and RRV, respectively, but do not offer cross-protection. ### Competing Interest Statement The authors have declared no competing interest. Advance Queensland Industry Research Fellowship, AQIRF067-2020-CV University of Queensland Research Training Program Stipend QIMR Berghofer
The Australasian Virology Society (AVS) holds premier biennial virology meetings that foster multidisciplinary research and collaboration and promote equity and inclusion of early-career researchers. The 12th AVS meeting (AVS12), convened by M. Tate, J. Fraser, and G. Moseley, was held from 2 to 5 December 2024 on Dja Dja Wurrung country at the RACV Goldfields Resort in Creswick, Victoria, Australia. In this report, we give a brief overview of the history of AVS and outline the current and developing priorities for the society. We provide a summary of the insightful panel discussions held to address career development and Indigenous virology, highlight the presentations given by international plenary speakers Joe Grove and Chantal Abergel, and celebrate the recipients of the numerous awards.
The spike glycoprotein of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is the main target for vaccine development, as antibodies generated against the spike protein are the most immunodominant and neutralizing against the virus. However, variants of concern (VOC), often containing multiple mutations within neutralizing epitopes, confer immune evasion of the response generated by current SARS-CoV-2 vaccines. To assess the immunogenicity and virus-neutralisation ability of antibodies induced by individual or combination of Vaxzevria (AstraZeneca: AZ) and Comirnaty (Pfizer: PZ) vaccines and of a hybrid immunity induced in people who were also infected with SARS-CoV-2, longitudinal sera samples of participants recruited through the David Serisier Research biobank (Mater Research Hospital) or at the University of Queensland were collected. ELISA with a panel of purified Spike proteins from ancestral, alpha, delta and omicron BA.1 and BA.2 VOCs showed significantly (by ~two to sixfold) reduced IgG antibody titres against Spike proteins from Omicron BA.1 and BA.2 compared to ancestral strain regardless of the number of vaccinations or presence of infection. Neutralisation assays showed reduced activity against delta and omicron BA.1, BA.5 and BA.5 VOCs. However, the differences were in general less pronounced than in the ELISA assay and some were not statistically significant, particularly after four (two AZ and two PZ) vaccinations. We also generated by circular polymerase extension reaction an attenuated SARS-CoV-2 strain with deletion of all accessory genes, ORF 3, 6, 7, and 8, based on the ancestral (QLD02) virus backbone (QLD02Δ3678) and validated it in virus-neutralization assays with our panel of sera samples. We showed the attenuation of the QLD02Δ3678 virus in Vero E6 and human Caco2 cells. We demonstrated that neutralization assays with the wild-type QLD02 virus and QLD02Δ3678 virus were concordant, providing a safe platform for neutralisation assays in BSL2/PC2 settings.
Human infections with the Japanese encephalitis virus (JEV) are a leading cause of viral encephalitis. An unprecedented outbreak of JEV genotype 4 was recently reported in Australia, with an isolate (JEVNSW/22) obtained from a stillborn piglet brain. Herein we conduct a thorough characterization of JEVNSW/22 in three different mouse strains and in human cortical brain organoids (hBOs), and determined the ability of JEVNSW/22 to be neutralized by sera from humans vaccinated with IMOJEV. JEVNSW/22 was less virulent than JEVFU (genotype 2) and JEVNakayama (genotype 3) in C57BL/6J mice and in interferon regulatory factor 7 deficient (Irf7-/-) mice, with infection of wild-type and knockout murine embryonic fibroblasts indicating JEVNSW/22 is more sensitive to type I interferon responses. Irf7-/- mice provide a new model for JEVNSW/22, showing higher viremia levels compared to C57BL/6J mice, and allowing for lethal neuroinvasive infection. All JEV strains were universally lethal in Ifnar-/- mice by day 3, with histological signs of brain hemorrhage, but no other lesions. There were no indications of brain infection in Ifnar-/- mice, with viral protein detected in blood vessels, but not neurons. All JEV isolates showed robust cytopathic infection of human cortical brain organoids, albeit lower for JEVNSW/22. IMOJEV vaccination in humans induced antibodies capable of neutralizing JEVNSW/22, although, for all JEV strains, cross-neutralization titers declined with increasing divergence from IMOJEV in the envelope amino acid sequences. Overall, our study establishes JEVNSW/22 mouse and hBO models of infection, allowing for possible lethal neuroinvasive infection in mice that was rarer than for other JEV genotypes. JEV vaccination regimens may afford protection against this newly emerged JEV genotype 4 strain, although neutralizing antibody responses are sub-optimal.
The World Health Organization recently declared a global initiative to control arboviral diseases. These are mainly caused by pathogenic flaviviruses (such as dengue, yellow fever and Zika viruses) and alphaviruses (such as chikungunya and Venezuelan equine encephalitis viruses). Vaccines represent key interventions for these viruses, with licensed human and/or veterinary vaccines being available for several members of both genera. However, a hurdle for the licensing of new vaccines is the epidemic nature of many arboviruses, which presents logistical challenges for phase III efficacy trials. Furthermore, our ability to predict or measure the post-vaccination immune responses that are sufficient for subclinical outcomes post-infection is limited. Given that arboviruses are also subject to control by the immune system of their insect vectors, several approaches are now emerging that aim to augment antiviral immunity in mosquitoes, including Wolbachia infection, transgenic mosquitoes, insect-specific viruses and paratransgenesis. In this Review, we discuss recent advances, current challenges and future prospects in exploiting both vertebrate and invertebrate immune systems for the control of flaviviral and alphaviral diseases. In this Review, the authors discuss recent advances, current challenges and future prospects in exploiting both vertebrate and invertebrate immune systems for the control of flaviviral and alphaviral diseases.
Self-amplifying mRNA (SAM) vaccines can be rapidly deployed in the event of disease outbreaks. A legitimate safety concern is the potential for recombination between alphavirus-based SAM vaccines and circulating viruses. This theoretical risk needs to be assessed in the regulatory process for SAM vaccine approval. Herein, we undertake extensive in vitro and in vivo assessments to explore recombination between SAM vaccine and a wide selection of alphaviruses and a coronavirus. SAM vaccines were found to effectively limit alphavirus co-infection through superinfection exclusion, although some co-replication was still possible. Using sensitive cell-based assays, replication-competent alphavirus chimeras were generated in vitro as a result of rare, but reproducible, RNA recombination events. The chimeras displayed no increased fitness in cell culture. Viable alphavirus chimeras were not detected in vivo in C57BL/6J, Rag1-/- and Ifnar-/- mice, in which high levels of SAM vaccine and alphavirus co-replicated in the same tissue. Furthermore, recombination between a SAM-spike vaccine and a swine coronavirus was not observed. In conclusion we state that although the ability of SAM vaccines to recombine with alphaviruses might be viewed as an environmental safety concern, several key factors substantially mitigate against in vivo emergence of chimeric viruses from SAM vaccine recipients.
Angiotensin-converting enzyme 2 (ACE2) is the primary entry receptor for severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), but ACE2-independent entry has been observed in vitro for strains with the spike-E484D substitution. Here, we conduct a whole-genome CRISPR-Cas9 knockout screen using SARSCoV-2 mouse adapted 1 (SARS-CoV-2MA1), which carries spike-E484D, to identify the ACE2-independent entry mechanisms. SARS-CoV-2MA1 infection in HEK293T cells relies on heparan sulfate and endocytic pathways, with TMEM106B, a transmembrane lysosomal protein, the most significant contributor. While SARS-CoV-2MA1 productively infects human brain organoids and K18-hACE2 mouse brains, it does not infect C57BL/6J or Ifnar-'- mouse brains. This suggests that ACE2-independent entry via TMEM106B, which is predominantly expressed in the brain, does not overtly increase the risk of SARS-CoV-2 neuroinvasiveness in mice with endogenous Ace2 expression. Importantly, SARS-CoV-2MA1 does not replicate in the Ace2-'- mouse respiratory tract. Overall, this suggests that robust ACE2-independent infection by SARS-CoV-2MA1 is likely an in vitro phenomenon with no apparent implications for infection in vivo.
IntroductionThe severity of Coronavirus disease 2019 (COVID-19) caused by the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is often dictated by a range of comorbidities. A considerable literature suggests iron deficiency and iron overload may contribute to increased infection, inflammation and disease severity, although direct causal relationships have been difficult to establish.MethodsHere we generate iron deficient and iron loaded C57BL/6 J mice by feeding standard low and high iron diets, with mice on a normal iron diet representing controls. All mice were infected with a primary SARS-CoV-2 omicron XBB isolate and lung inflammatory responses were analyzed by histology, immunohistochemistry and RNA-Seq.ResultsCompared with controls, iron deficient mice showed no significant changes in lung viral loads or histopathology, whereas, iron loaded mice showed slightly, but significantly, reduced lung viral loads and histopathology. Transcriptional changes were modest, but illustrated widespread dysregulation of inflammation signatures for both iron deficient vs. controls, and iron loaded vs. controls. Some of these changes could be associated with detrimental outcomes, whereas others would be viewed as beneficial.DiscussionDiet-associated iron deficiency or overload thus induced modest modulations of inflammatory signatures, but no significant histopathologically detectable disease exacerbations.
IntroductionGlobal microplastic (MP) pollution is now well recognized, with humans and animals consuming and inhaling MPs on a daily basis, with a growing body of concern surrounding the potential impacts on human health.MethodsUsing a mouse model of mild COVID-19, we describe herein the effects of azide-free 1 μm polystyrene MP beads, co-delivered into lungs with a SARS-CoV-2 omicron BA.5 inoculum. The effect of MPs on the host response to SARS-CoV-2 infection was analysed using histopathology and RNA-Seq at 2 and 6 days post-infection (dpi).ResultsAlthough infection reduced clearance of MPs from the lung, virus titres and viral RNA levels were not significantly affected by MPs, and overt MP-associated clinical or histopathological changes were not observed. However, RNA-Seq of infected lungs revealed that MP exposure suppressed innate immune responses at 2 dpi and increased pro-inflammatory signatures at 6 dpi. The cytokine profile at 6 dpi showed a significant correlation with the ‘cytokine release syndrome’ signature observed in some COVID-19 patients.DiscussionThe findings are consistent with the recent finding that MPs can inhibit phagocytosis of apoptotic cells via binding of Tim4. They also add to a growing body of literature suggesting that MPs can dysregulate inflammatory processes in specific disease settings.
The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) causes Coronavirus Disease 2019 (COVID-19), which can result in severe disease, often characterised by a 'cytokine storm' and the associated acute respiratory distress syndrome. However, many infections with SARS-CoV-2 are mild or asymptomatic throughout the course of infection. Although blood biomarkers of severe disease are well studied, less well understood are the inflammatory signatures in lung tissues associated with mild disease or silent infections, wherein infection and inflammation are rapidly resolved leading to sequelae-free recovery. Herein we described RNA-Seq and histological analyses of lungs over time in an omicron BA.1/K18-hACE2 mouse infection model, which displays these latter features. Although robust infection was evident at 2 days post infection (dpi), viral RNA was largely cleared by 10 dpi. Acute inflammatory signatures showed a slightly different pattern of cytokine signatures compared with severe infection models, and where much diminished 30 dpi and absent by 66 dpi. Cellular deconvolution identified significantly increased abundance scores for a number of anti-inflammatory pro-resolution cell types at 5/10 dpi. These included type II innate lymphoid cells, T regulatory cells, and interstitial macrophages. Genes whose expression trended downwards over 2-66 dpi included biomarkers of severe disease and were associated with 'cytokine storm' pathways. Genes whose expression trended upward during this period were associated with recovery of ciliated cells, AT2 to AT1 transition, reticular fibroblasts and innate lymphoid cells, indicating a return to homeostasis. Very few differentially expressed host genes were identified at 66 dpi, suggesting near complete recovery. The parallels between mild or subclinical infections in humans and those observed in this BA.1/K18-hACE2 mouse model are discussed with reference to the concept of "protective inflammation".
In 2022, a genotype IV (GIV) strain of Japanese encephalitis virus (JEV) caused an unprecedented and widespread outbreak of disease in pigs and humans in Australia. As no veterinary vaccines against JEV are approved in Australia and all current approved human and veterinary vaccines are derived from genotype (G) III JEV strains, we used the recently described insect-specific Binjari virus (BinJV) chimeric flavivirus vaccine technology to produce a JEV GIV vaccine candidate. Herein we describe the production of a chimeric virus displaying the structural prM and E proteins of a JEV GIV isolate obtained from a stillborn piglet (JEVNSW/22) in the genomic backbone of BinJV (BinJ/JEVNSW/22-prME). BinJ/JEVNSW/22-prME was shown to be antigenically indistinguishable from the JEVNSW/22 parental virus by KD analysis and a panel of JEV-reactive monoclonal antibodies in ELISA. BinJ/JEVNSW/22-prME replicated efficiently in C6/36 cells, reaching titres of >107 infectious units/mL - an important attribute for vaccine manufacture. As expected, BinJ/JEVNSW/22-prME failed to replicate in a variety of vertebrate cells lines. When used to immunise mice, the vaccine induced a potent virus neutralising response against JEVNSW/22 and to GII and GIII JEV strains. The BinJ/JEVNSW/22-prME vaccine provided complete protection against lethal challenge with JEVNSW/22, whilst also providing partial protection against viraemia and disease for the related Murray Valley encephalitis virus. Our results demonstrate that BinJ/JEVNSW/22-prME is a promising vaccine candidate against JEV.
RT-qPCR remains a key diagnostic methodology for COVID-19/SARS-CoV-2. Typically, nasal or saliva swabs from patients are placed in virus transport media (VTM), RNA is extracted at the pathology laboratory, and viral RNA is measured using RT-qPCR. In this study, we describe the use of TNA-Cifer Reagent E in a pre-clinical evaluation study to inactivate SARS-CoV-2 as well as prepare samples for RT-qPCR. Adding 1 part TNA-Cifer Reagent E to 5 parts medium containing SARS-CoV-2 for 10 min at room temperature inactivated the virus and permitted RT-qPCR detection. TNA-Cifer Reagent E was compared with established column-based RNA extraction and purification methodology using a panel of human clinical nasal swab samples (n = 61), with TNA-Cifer Reagent E showing high specificity (100%) and sensitivity (97.37%). Mixtures of SARS-CoV-2 virus and TNA-Cifer Reagent E could be stored for 3 days at room temperature or for 2 weeks at 4°C without the loss of RT-qPCR detection sensitivity. The detection sensitivity was preserved when TNA-Cifer Reagent E was used in conjunction with a range of VTM for saliva samples but only PBS (Gibco) and Amies Orange for nasal samples. Thus, TNA-Cifer Reagent E improves safety by rapidly inactivating the virus during sample processing, potentially providing a safe means for molecular SARS-CoV-2 testing outside traditional laboratory settings. The reagent also eliminates the need for column-based and/or automated viral RNA extraction/purification processes, thereby providing cost savings for equipment and reagents, as well as reducing processing and handling times.
SUMMARY Background Human infections with Japanese encephalitis virus (JEV) are a leading cause of viral encephalitis. An unprecedented outbreak of JEV genotype 4 was recently reported in Australia, with an isolate (JEV NSW/22 ) obtained from a stillborn piglet brain. Methods Herein we compared the neuropathology of JEV NSW/22 , JEV FU (genotype 2) and JEV Nakayama (genotype 3) in adult C57BL/6J wild-type mice, mice deficient in interferon regulatory factor 7 ( Irf7 -/- ), and mice deficient in type I interferon receptor ( Ifnar -/- ), as well as in human cortical brain organoids (hBOs). Using human serum post-Imojev vaccination, we performed neutralisation assays to determine JEV NSW/22 susceptibility to vaccine responses. Findings In C57BL/6J and Irf7 -/- mice with lethal outcomes, brain infection and histopathological lesions recapitulated those seen in humans and primates. JEV was universally lethal in Ifnar -/- mice by day 3 with histological signs of brain hemorrhage, but produced no other detectable brain infection or lesions, with viral protein detected in blood vessels but not neurons. We thus describe a new Irf7 -/- mouse model for JEV NSW/22 , which had increased viremia compared to C57BL/6J mice, allowing for lethal neuroinvasive infection in one mouse. Overall, JEV NSW/22 was less neurovirulent than other JEV isolates in C57BL/6J and Irf7 -/- mice, and was more sensitive to type I interferon. All JEV isolates showed robust cytopathic infection of human cortical brain organoids, albeit lower for JEV NSW/22 . We also show that Imojev vaccination in humans induced neutralizing antibodies against JEV NSW/22 , with the level of cross-neutralisation related to the conservation in envelope protein amino acid sequences for each isolate. Interpretation Our study establishes JEV NSW/22 mouse models of infection, allowing for possible lethal neuroinvasive infection that was rarer than for other JEV genotypes. JEV vaccination regimens may afford protection against this newly emerged JEV genotype 4 strain, although neutralizing antibody responses are sub-optimal. Funding QIMRB received a generous philanthropic donation from the Brazil Family Foundation awarded to D.J.R. to support Japanese Encephalitis virus research at QIMRB. A.S. holds an Investigator grant from the National Health and Medical Research Council (NHMRC) of Australia (APP1173880). We also acknowledge the intramural grant from QIMR Berghofer awarded to R.S. and D.J.R. for purchase of the CelVivo Clinostar incubator for producing human cortical brain organoids. The project “Japanese encephalitis vaccine via the intradermal route in children and adults (JEVID-2): A clinical trial comparing the immunogenicity and safety of Japanese encephalitis vaccine administered by subcutaneous and intradermal routes” being conducted by G.D., N.G., and N.W. was funded by the Sydney Children’s Hospitals Network and New South Wales Health. Research in context Evidence before the study JEV from the historically rare genotype 4 recently emerged in Australia, causing an unprecedented outbreak, with 44 human cases and 7 fatalities. While a range of JEV mouse models have been reported, none of them infect adult mice with a genotype 4 isolate. The efficacy of current vaccines for this JEV genotype are also unclear. Added value of this study We establish well characterised adult and subcutaneously infected mouse models for JEV which recapitulate many aspects of human disease including lethal neuroinvasive infection and severe histopathological lesions. Prolonged viremia was significantly associated with lethal neuroinvasiveness in Irf7 -/- mice. We demonstrate that a genotype 4 Australian isolate, JEV NSW/22 , exhibited markedly diminished lethal neuroinvasion compared to other JEV genotypes. Using serum from Imojev vaccine recipients, neutralizing antibodies against JEV NSW/22 were present, albeit at sub-optimal titers. Implications of all the available evidence The establishment of well characterised adult mouse models of JEV NSW/22 with rare neuropenetrance after peripheral inoculation that recapitulate human disease is an important tool that can now be deployed in pre-clinical studies and to understand disease pathogenesis. Our study suggests that new vaccines should be developed against circulating JEV strains for optimal neutralizing antibody responses.