Your browser doesn't support javascript.
loading
: 20 | 50 | 100
1 - 20 de 1.649
1.
Arch Virol ; 169(7): 137, 2024 Jun 07.
Article En | MEDLINE | ID: mdl-38847873

The present study focuses on the pathological and molecular characterization of African swine fever virus (ASFV) associated with an outbreak in wild boars in two national parks in southern India in 2022-2023. Significant mortality was observed among free-ranging wild boars at Bandipur National Park, Karnataka, and Mudumalai National Park, Tamil Nadu. Extensive combing operations were undertaken in both national parks, spanning an area of around 100 km2, originating from the reported epicenter, to estimate the mortality rate. Recovered carcasses were pathologically examined, and ASFV isolates was genetically characterized. Our findings suggested spillover infection of ASFV from nearby domestic pigs, and the virus was equally pathogenic in wild boars and domestic pigs. ASFV intrusion was reported in the Northeastern region of the country, which borders China and Myanmar, whereas the current outbreak is very distantly located, in southern India. Molecular data will help in tracing the spread of the virus in the country.


African Swine Fever Virus , African Swine Fever , Disease Outbreaks , Sus scrofa , Animals , African Swine Fever Virus/genetics , African Swine Fever Virus/isolation & purification , India/epidemiology , Swine , African Swine Fever/virology , African Swine Fever/epidemiology , African Swine Fever/mortality , Sus scrofa/virology , Disease Outbreaks/veterinary , Phylogeny , Animals, Wild/virology
2.
Sci Rep ; 14(1): 14199, 2024 06 20.
Article En | MEDLINE | ID: mdl-38902400

The wild to domestic bird interface is an important nexus for emergence and transmission of highly pathogenic avian influenza (HPAI) viruses. Although the recent incursion of HPAI H5N1 Clade 2.3.4.4b into North America calls for emergency response and planning given the unprecedented scale, readily available data-driven models are lacking. Here, we provide high resolution spatial and temporal transmission risk models for the contiguous United States. Considering virus host ecology, we included weekly species-level wild waterfowl (Anatidae) abundance and endemic low pathogenic avian influenza virus prevalence metrics in combination with number of poultry farms per commodity type and relative biosecurity risks at two spatial scales: 3 km and county-level. Spillover risk varied across the annual cycle of waterfowl migration and some locations exhibited persistent risk throughout the year given higher poultry production. Validation using wild bird introduction events identified by phylogenetic analysis from 2022 to 2023 HPAI poultry outbreaks indicate strong model performance. The modular nature of our approach lends itself to building upon updated datasets under evolving conditions, testing hypothetical scenarios, or customizing results with proprietary data. This research demonstrates an adaptive approach for developing models to inform preparedness and response as novel outbreaks occur, viruses evolve, and additional data become available.


Animals, Wild , Disease Outbreaks , Influenza A Virus, H5N1 Subtype , Influenza in Birds , Poultry , Animals , Influenza in Birds/epidemiology , Influenza in Birds/virology , Influenza in Birds/transmission , Animals, Wild/virology , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/pathogenicity , Disease Outbreaks/veterinary , Poultry/virology , Birds/virology , United States/epidemiology , Phylogeny , Animal Migration
3.
Euro Surveill ; 29(25)2024 Jun.
Article En | MEDLINE | ID: mdl-38904109

Highly pathogenic avian influenza (HPAI) has caused widespread mortality in both wild and domestic birds in Europe 2020-2023. In July 2023, HPAI A(H5N1) was detected on 27 fur farms in Finland. In total, infections in silver and blue foxes, American minks and raccoon dogs were confirmed by RT-PCR. The pathological findings in the animals include widespread inflammatory lesions in the lungs, brain and liver, indicating efficient systemic dissemination of the virus. Phylogenetic analysis of Finnish A(H5N1) strains from fur animals and wild birds has identified three clusters (Finland I-III), and molecular analyses revealed emergence of mutations known to facilitate viral adaptation to mammals in the PB2 and NA proteins. Findings of avian influenza in fur animals were spatially and temporally connected with mass mortalities in wild birds. The mechanisms of virus transmission within and between farms have not been conclusively identified, but several different routes relating to limited biosecurity on the farms are implicated. The outbreak was managed in close collaboration between animal and human health authorities to mitigate and monitor the impact for both animal and human health.


Animals, Wild , Charadriiformes , Disease Outbreaks , Influenza A Virus, H5N1 Subtype , Influenza in Birds , Phylogeny , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Finland/epidemiology , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/pathogenicity , Influenza A Virus, H5N1 Subtype/isolation & purification , Animals, Wild/virology , Charadriiformes/virology , Disease Outbreaks/veterinary , Farms , Orthomyxoviridae Infections/veterinary , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/mortality , Orthomyxoviridae Infections/epidemiology , Foxes/virology , Birds/virology , Mink/virology
4.
PLoS One ; 19(6): e0305702, 2024.
Article En | MEDLINE | ID: mdl-38905303

Since the confirmation of African swine fever (ASF) in South Korea in 2019, its spread, predominantly in wild boars, has been a significant concern. A key factor in this situation is the lack of identification of risk factors by surveillance bias. The unique orography, characterized by high mountains, complicates search efforts, leading to overlooked or delayed case detection and posing risks to the swine industry. Additionally, shared rivers with neighboring country present a continual threat of virus entry. This study employs geospatial analysis and statistical methods to 1) identify areas at high risk of ASF occurrence but possibly under-surveilled, and 2) indicate strategic surveillance points for monitoring the risk of ASF virus entry through water bodies and basin influences. Pearson's rho test indicated that elevation (rho = -0.908, p-value < 0.001) and distance from roads (rho = -0.979, p-value < 0.001) may have a significant impact on limiting surveillance activities. A map of potential under-surveilled areas was created considering these results and was validated by a chi-square goodness-of-fit test (X-square = 208.03, df = 1, p-value < 0.001). The strong negative correlation (rho = -0.997, p-value <0.001) between ASF-positive wild boars and distance from water sources emphasizes that areas surrounding rivers are one of the priority areas for monitoring. The subsequent hydrological analyses provided important points for monitoring the risk of virus entry via water from the neighboring country. This research aims to facilitate early detection and prevent further spread of ASF.


African Swine Fever , African Swine Fever/epidemiology , African Swine Fever/virology , Animals , Swine , Republic of Korea/epidemiology , Animals, Wild/virology , Sus scrofa/virology , African Swine Fever Virus/isolation & purification , African Swine Fever Virus/pathogenicity , Epidemiological Monitoring/veterinary
5.
PLoS One ; 19(6): e0303756, 2024.
Article En | MEDLINE | ID: mdl-38829903

The rapid spread of highly pathogenic avian influenza (HPAI) A (H5N1) viruses in Southeast Asia in 2004 prompted the New Zealand Ministry for Primary Industries to expand its avian influenza surveillance in wild birds. A total of 18,693 birds were sampled between 2004 and 2020, including migratory shorebirds (in 2004-2009), other coastal species (in 2009-2010), and resident waterfowl (in 2004-2020). No avian influenza viruses (AIVs) were isolated from cloacal or oropharyngeal samples from migratory shorebirds or resident coastal species. Two samples from red knots (Calidris canutus) tested positive by influenza A RT-qPCR, but virus could not be isolated and no further characterization could be undertaken. In contrast, 6179 samples from 15,740 mallards (Anas platyrhynchos) tested positive by influenza A RT-qPCR. Of these, 344 were positive for H5 and 51 for H7. All H5 and H7 viruses detected were of low pathogenicity confirmed by a lack of multiple basic amino acids at the hemagglutinin (HA) cleavage site. Twenty H5 viruses (six different neuraminidase [NA] subtypes) and 10 H7 viruses (two different NA subtypes) were propagated and characterized genetically. From H5- or H7-negative samples that tested positive by influenza A RT-qPCR, 326 AIVs were isolated, representing 41 HA/NA combinations. The most frequently isolated subtypes were H4N6, H3N8, H3N2, and H10N3. Multivariable logistic regression analysis of the relations between the location and year of sampling, and presence of AIV in individual waterfowl showed that the AIV risk at a given location varied from year to year. The H5 and H7 isolates both formed monophyletic HA groups. The H5 viruses were most closely related to North American lineages, whereas the H7 viruses formed a sister cluster relationship with wild bird viruses of the Eurasian and Australian lineages. Bayesian analysis indicates that the H5 and H7 viruses have circulated in resident mallards in New Zealand for some time. Correspondingly, we found limited evidence of influenza viruses in the major migratory bird populations visiting New Zealand. Findings suggest a low probability of introduction of HPAI viruses via long-distance bird migration and a unique epidemiology of AIV in New Zealand.


Animals, Wild , Birds , Influenza in Birds , Phylogeny , Animals , New Zealand/epidemiology , Influenza in Birds/virology , Influenza in Birds/epidemiology , Animals, Wild/virology , Birds/virology , Influenza A virus/genetics , Influenza A virus/isolation & purification , Influenza A virus/classification , Hemagglutinin Glycoproteins, Influenza Virus/genetics , Genome, Viral , Ducks/virology
6.
Emerg Microbes Infect ; 13(1): 2361792, 2024 Dec.
Article En | MEDLINE | ID: mdl-38828793

Europe has suffered unprecedented epizootics of high pathogenicity avian influenza (HPAI) clade 2.3.4.4b H5N1 since Autumn 2021. As well as impacting upon commercial and wild avian species, the virus has also infected mammalian species more than ever observed previously. Mammalian species involved in spill over events have primarily been scavenging terrestrial carnivores and farmed mammalian species although marine mammals have also been affected. Alongside reports of detections of mammalian species found dead through different surveillance schemes, several mass mortality events have been reported in farmed and wild animals. In November 2022, an unusual mortality event was reported in captive bush dogs (Speothos venaticus) with clade 2.3.4.4b H5N1 HPAIV of avian origin being the causative agent. The event involved an enclosure of 15 bush dogs, 10 of which succumbed during a nine-day period with some dogs exhibiting neurological disease. Ingestion of infected meat is proposed as the most likely infection route.


Animals, Wild , Influenza A Virus, H5N1 Subtype , Orthomyxoviridae Infections , Animals , Influenza A Virus, H5N1 Subtype/pathogenicity , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/isolation & purification , United Kingdom/epidemiology , Animals, Wild/virology , Orthomyxoviridae Infections/veterinary , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/mortality , Orthomyxoviridae Infections/transmission , Canidae , Influenza in Birds/virology , Influenza in Birds/mortality , Influenza in Birds/transmission
7.
Virol J ; 21(1): 146, 2024 Jun 25.
Article En | MEDLINE | ID: mdl-38918816

The genus Jeilongvirus comprises non-segmented negative-stranded RNA viruses that are classified within the Paramyxoviridae family by phylogeny. Jeilongviruses are found in various reservoirs, including rodents and bats. Rodents are typical viral reservoirs with diverse spectra and zoonotic potential. Little is currently known about jeilongviruses in rodents from central China. The study utilized high-throughput and Sanger sequencing to obtain jeilongvirus genomes, including those of two novel strains (HBJZ120/CHN/2021 (17,468 nt) and HBJZ157/CHN/2021 (19,143 nt)) and three known viruses (HBXN18/CHN/2021 (19,212 nt), HBJZ10/CHN/2021 (19,700 nt), HBJM106/CHN/2021 (18,871 nt)), which were characterized by genome structure, identity matrix, and phylogenetic analysis. Jeilongviruses were classified into three subclades based on their topology, phylogeny, and hosts. Based on the amino acid sequence identities and phylogenetic analysis of the L protein, HBJZ120/CHN/2021 and HBJZ157/CHN/2021 were found to be strains rather than novel species. Additionally, according to specific polymerase chain reaction screening, the positive percentage of Beilong virus in Hubei was 6.38%, suggesting that Beilong virus, belonging to the Jeilongvirus genus, is likely to be widespread in wild rodents. The identification of novel strains further elucidated the genomic diversity of jeilongviruses. Additionally, the prevalence of jeilongviruses in Hubei, China, was profiled, establishing a foundation for the surveillance and early warning of emerging paramyxoviruses.


Genome, Viral , Phylogeny , Rodentia , Animals , China , Rodentia/virology , Animals, Wild/virology , Paramyxovirinae/genetics , Paramyxovirinae/classification , Paramyxovirinae/isolation & purification , RNA, Viral/genetics , Paramyxoviridae Infections/veterinary , Paramyxoviridae Infections/virology , Paramyxoviridae Infections/epidemiology , High-Throughput Nucleotide Sequencing , Disease Reservoirs/virology , Sequence Analysis, DNA
8.
Viruses ; 16(6)2024 May 31.
Article En | MEDLINE | ID: mdl-38932181

High pathogenicity avian influenza viruses (HPAIVs) cause high morbidity and mortality in poultry species. HPAIV prevalence means high numbers of infected wild birds could lead to spill over events for farmed poultry. How these pathogens survive in the environment is important for disease maintenance and potential dissemination. We evaluated the temperature-associated survival kinetics for five clade 2.3.4.4 H5Nx HPAIVs (UK field strains between 2014 and 2021) incubated at up to three temperatures for up to ten weeks. The selected temperatures represented northern European winter (4 °C) and summer (20 °C); and a southern European summer temperature (30 °C). For each clade 2.3.4.4 HPAIV, the time in days to reduce the viral infectivity by 90% at temperature T was established (DT), showing that a lower incubation temperature prolonged virus survival (stability), where DT ranged from days to weeks. The fastest loss of viral infectivity was observed at 30 °C. Extrapolation of the graphical DT plots to the x-axis intercept provided the corresponding time to extinction for viral decay. Statistical tests of the difference between the DT values and extinction times of each clade 2.3.4.4 strain at each temperature indicated that the majority displayed different survival kinetics from the other strains at 4 °C and 20 °C.


Influenza A virus , Influenza in Birds , Temperature , Animals , Influenza in Birds/virology , Influenza in Birds/mortality , Influenza A virus/pathogenicity , Influenza A virus/genetics , Influenza A virus/classification , Influenza A virus/physiology , Kinetics , Poultry/virology , Animals, Wild/virology , Birds/virology , Poultry Diseases/virology , Poultry Diseases/mortality
9.
Viruses ; 16(6)2024 May 31.
Article En | MEDLINE | ID: mdl-38932187

In 2023, South Africa continued to experience sporadic cases of clade 2.3.4.4b H5N1 high-pathogenicity avian influenza (HPAI) in coastal seabirds and poultry. Active environmental surveillance determined that H5Nx, H7Nx, H9Nx, H11Nx, H6N2, and H12N2, amongst other unidentified subtypes, circulated in wild birds and ostriches in 2023, but that H5Nx was predominant. Genome sequencing and phylogenetic analysis of confirmed H5N1 HPAI cases determined that only two of the fifteen sub-genotypes that circulated in South Africa in 2021-2022 still persisted in 2023. Sub-genotype SA13 remained restricted to coastal seabirds, with accelerated mutations observed in the neuraminidase protein. SA15 caused the chicken outbreaks, but outbreaks in the Paardeberg and George areas, in the Western Cape province, and the Camperdown region of the KwaZulu-Natal province were unrelated to each other, implicating wild birds as the source. All SA15 viruses contained a truncation in the PB1-F2 gene, but in the Western Cape SA15 chicken viruses, PA-X was putatively expressed as a novel isoform with eight additional amino acids. South African clade 2.3.4.4b H5N1 viruses had comparatively fewer markers of virulence and pathogenicity compared to European strains, a possible reason why no spillover to mammals has occurred here yet.


Birds , Disease Outbreaks , Genotype , Influenza A Virus, H5N1 Subtype , Influenza in Birds , Phylogeny , South Africa/epidemiology , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/pathogenicity , Influenza A Virus, H5N1 Subtype/classification , Influenza A Virus, H5N1 Subtype/isolation & purification , Birds/virology , Chickens/virology , Poultry/virology , Genome, Viral , Virulence , Animals, Wild/virology , Neuraminidase/genetics , Viral Proteins/genetics
10.
Viruses ; 16(6)2024 Jun 13.
Article En | MEDLINE | ID: mdl-38932248

The emergence of the novel coronavirus SARS-CoV-2 has led to significant interest in its potential transmission between animals and humans, especially pets. This review article summarises the literature on coronavirus infections in domestic animals, emphasising epidemiology, transmission dynamics, clinical manifestations, and public health implications. This article highlights current understandings of the relationship between infections in companion animals and humans, identifies research gaps, and suggests directions for future research. Cases of disease in cats, dogs, and other domestic animals, often occurring through close contact with infected owners, are reviewed, raising concerns about possible zoonotic and reverse zoonotic transmission. Precautions and recommendations for pet owners and healthcare workers are also discussed. The scientific evidence presented in the article highlights the need for a One Health approach that considers the health of people, animals, and the environment to combat future pandemics.


Animals, Wild , COVID-19 , Pets , Public Health , SARS-CoV-2 , Zoonoses , Animals , COVID-19/transmission , COVID-19/epidemiology , COVID-19/veterinary , COVID-19/virology , Pets/virology , Humans , Zoonoses/transmission , Zoonoses/epidemiology , Zoonoses/virology , Cats , Animals, Wild/virology , Dogs , Animals, Domestic/virology , One Health , Viral Zoonoses/transmission , Viral Zoonoses/epidemiology
11.
Viruses ; 16(5)2024 05 11.
Article En | MEDLINE | ID: mdl-38793647

(1) Background: Epizootic hemorrhagic disease virus (EHDV) and bluetongue virus (BTV) are orbiviruses that cause hemorrhagic disease (HD) with significant economic and population health impacts on domestic livestock and wildlife. In the United States, white-tailed deer (Odocoileus virginianus) are particularly susceptible to these viruses and are a frequent blood meal host for various species of Culicoides biting midges (Diptera: Ceratopogonidae) that transmit orbiviruses. The species of Culicoides that transmit EHDV and BTV vary between regions, and larval habitats can differ widely between vector species. Understanding how midges are distributed across landscapes can inform HD virus transmission risk on a local scale, allowing for improved animal management plans to avoid suspected high-risk areas or target these areas for insecticide control. (2) Methods: We used occupancy modeling to estimate the abundance of gravid (egg-laden) and parous (most likely to transmit the virus) females of two putative vector species, C. stellifer and C. venustus, and one species, C. haematopotus, that was not considered a putative vector. We developed a universal model to determine habitat preferences, then mapped a predicted weekly midge abundance during the HD transmission seasons in 2015 (July-October) and 2016 (May-October) in Florida. (3) Results: We found differences in habitat preferences and spatial distribution between the parous and gravid states for C. haematopotus and C. stellifer. Gravid midges preferred areas close to water on the border of well and poorly drained soil. They also preferred mixed bottomland hardwood habitats, whereas parous midges appeared less selective of habitat. (4) Conclusions: If C. stellifer is confirmed as an EHDV vector in this region, the distinct spatial and abundance patterns between species and physiological states suggest that the HD risk is non-random across the study area.


Animals, Wild , Bluetongue virus , Ceratopogonidae , Deer , Hemorrhagic Disease Virus, Epizootic , Insect Vectors , Reoviridae Infections , Animals , Ceratopogonidae/virology , Ceratopogonidae/physiology , Hemorrhagic Disease Virus, Epizootic/physiology , Deer/virology , Insect Vectors/virology , Insect Vectors/physiology , Bluetongue virus/physiology , Animals, Wild/virology , Reoviridae Infections/transmission , Reoviridae Infections/veterinary , Reoviridae Infections/virology , Ecosystem , Seasons , Farms , Birds/virology
12.
Adv Exp Med Biol ; 1451: 75-90, 2024.
Article En | MEDLINE | ID: mdl-38801572

The current multicounty outbreak of monkeypox virus (MPXV) posed an emerging and continued challenge to already strained public healthcare sector, around the globe. Since its first identification, monkeypox disease (mpox) remained enzootic in Central and West African countries where reports of human cases are sporadically described. Recent trends in mpox spread outside the Africa have highlighted increased incidence of spillover of the MPXV from animal to humans. While nature of established animal reservoirs remained undefined, several small mammals including rodents, carnivores, lagomorphs, insectivores, non-human primates, domestic/farm animals, and several species of wildlife are proposed to be carrier of the MPXV infection. There are established records of animal-to-human (zoonotic) spread of MPXV through close interaction of humans with animals by eating bushmeat, contracting bodily fluids or trading possibly infected animals. In contrast, there are reports and increasing possibilities of human-to-animal (zooanthroponotic) spread of the MPXV through petting and close interaction with pet owners and animal care workers. We describe here the rationales and molecular factors which predispose the spread of MPXV not only amongst humans but also from animals to humans. A range of continuing opportunities for the spread and evolution of MPXV are discussed to consider risks beyond the currently identified groups. With the possibility of MPXV establishing itself in animal reservoirs, continued and broad surveillance, investigation into unconventional transmissions, and exploration of spillover events are warranted.


Monkeypox virus , Mpox (monkeypox) , Zoonoses , Animals , Mpox (monkeypox)/transmission , Mpox (monkeypox)/epidemiology , Mpox (monkeypox)/virology , Humans , Monkeypox virus/pathogenicity , Monkeypox virus/genetics , Zoonoses/transmission , Zoonoses/virology , Zoonoses/epidemiology , Disease Reservoirs/virology , Disease Outbreaks , Animals, Wild/virology
13.
Virus Genes ; 60(3): 320-324, 2024 Jun.
Article En | MEDLINE | ID: mdl-38722491

H6 avian influenza virus is widely prevalent in wild birds and poultry and has caused human infection in 2013 in Taiwan, China. During our active influenza surveillance program in wild waterfowl at Poyang Lake, Jiangxi Province, an H6N2 AIV was isolated and named A/bean goose/JiangXi/452-4/2013(H6N2). The isolate was characterized as a typical low pathogenic avian influenza virus (LPAIV) due to the presence of the amino acid sequence PQIETR↓GLFGAI at the cleavage site of the hemagglutinin (HA) protein. The genetic evolution analysis revealed that the NA gene of the isolate originated from North America and exhibited the highest nucleotide identity (99.29%) with a virus recovered from wild bird samples in North America, specifically A/bufflehead/California/4935/2012(H11N2). Additionally, while the HA and PB1 genes belonged to the Eurasian lineage, they displayed frequent genetic interactions with the North American lineage. The remaining genes showed close genetic relationships with Eurasian viruses. The H6N2 isolate possessed a complex genome, indicating it is a multi-gene recombinant virus with genetic material from both Eurasian and North American lineages.


Animals, Wild , Influenza A virus , Influenza in Birds , Phylogeny , Reassortant Viruses , Animals , China , Reassortant Viruses/genetics , Reassortant Viruses/isolation & purification , Reassortant Viruses/classification , Influenza in Birds/virology , Animals, Wild/virology , Influenza A virus/genetics , Influenza A virus/isolation & purification , Influenza A virus/classification , Hemagglutinin Glycoproteins, Influenza Virus/genetics , Birds/virology , Evolution, Molecular , Genome, Viral/genetics , Neuraminidase/genetics , Viral Proteins/genetics
14.
Science ; 384(6696): 615-617, 2024 May 10.
Article En | MEDLINE | ID: mdl-38723093

An ambitious U.S. project aims to sample more than 50 animal species to clarify how the COVID-19 virus moves between people and wildlife.


Animals, Wild , COVID-19 , SARS-CoV-2 , Viral Zoonoses , Animals , Humans , Animals, Wild/virology , COVID-19/transmission , COVID-19/virology , SARS-CoV-2/isolation & purification , United States , Viral Zoonoses/transmission , Viral Zoonoses/virology
15.
Viruses ; 16(5)2024 04 29.
Article En | MEDLINE | ID: mdl-38793583

Papillomaviruses (PV) infect epithelial cells and can cause hyperplastic or neoplastic lesions. In felids, most described PVs are from domestic cats (Felis catus; n = 7 types), with one type identified in each of the five wild felid species studied to date (Panthera uncia, Puma concolor, Leopardus wiedii, Panthera leo persica and Lynx rufus). PVs from domestic cats are highly diverse and are currently classified into three genera (Lambdapapillomavirus, Dyothetapapillomavirus, and Taupapillomavirus), whereas those from wild felids, although diverse, are all classified into the Lambdapapillomavirus genus. In this study, we used a metagenomic approach to identify ten novel PV genomes from rectal swabs of five deceased caracals (Caracal caracal) living in the greater Cape Town area, South Africa. These are the first PVs to be described from caracals, and represent six new PV types, i.e., Caracal caracal papillomavirus (CcarPV) 1-6. These CcarPV fall into two phylogenetically distinct genera: Lambdapapillomavirus, and Treisetapapillomavirus. Two or more PV types were identified in a single individual for three of the five caracals, and four caracals shared at least one of the same PV types with another caracal. This study broadens our understanding of wild felid PVs and provides evidence that there may be several wild felid PV lineages.


Felidae , Genome, Viral , Papillomaviridae , Papillomavirus Infections , Phylogeny , Animals , South Africa , Papillomaviridae/genetics , Papillomaviridae/classification , Papillomaviridae/isolation & purification , Papillomavirus Infections/virology , Papillomavirus Infections/veterinary , Felidae/virology , Cats , Metagenomics , Animals, Wild/virology
16.
Infect Genet Evol ; 121: 105602, 2024 Jul.
Article En | MEDLINE | ID: mdl-38734397

Hepatitis E, caused by the hepatitis E virus (HEV), is a global public health issue. Low similarity between the gene sequences of mouse and human HEV led to the belief that the risk of human infection was low. Recent reports of chronic and acute hepatitis E caused by murine HEV infection in humans in Hong Kong have raised global concerns. Therefore, it is crucial to investigate the epidemiology and prevalence of HEV in China. We comprehensively analyzed different rodent HEV strains to understand rocahepevirus occurrence in Hubei Province, China. The HEV positivity rate for was 6.43% (73/1136). We identified seven near-full-length rocahepevirus strains and detected rat HEV antigens in tissues from different mouse species. HEV has extensive tissue tropism and a high viral load in the liver. We highlight the genetic diversity of HEVs in rodents and underscore the importance of paying attention to their variation and evolution.


Hepatitis E virus , Hepatitis E , Phylogeny , Hepatitis E virus/genetics , Hepatitis E virus/classification , Animals , China/epidemiology , Hepatitis E/epidemiology , Hepatitis E/veterinary , Hepatitis E/virology , Prevalence , Mice , Rodentia/virology , Rats , Animals, Wild/virology , Genetic Variation
17.
Emerg Infect Dis ; 30(6): 1285-1288, 2024 Jun.
Article En | MEDLINE | ID: mdl-38703022

We isolated novel reassortant avian influenza A(H5N6) viruses containing genes from clade 2.3.4.4b H5N1 virus and low pathogenicity avian influenza viruses in carcasses of whooper swans and bean geese in South Korea during December 2023. Neuraminidase gene was from a clade 2.3.4.4b H5N6 virus infecting poultry and humans in China.


Animals, Wild , Birds , Influenza A virus , Influenza in Birds , Phylogeny , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Republic of Korea/epidemiology , Animals, Wild/virology , Influenza A virus/genetics , Influenza A virus/classification , Birds/virology , Reassortant Viruses/genetics , History, 21st Century , Humans , Neuraminidase/genetics
19.
J Gen Virol ; 105(5)2024 May.
Article En | MEDLINE | ID: mdl-38695722

High-pathogenicity avian influenza viruses (HPAIVs) of the goose/Guangdong lineage are enzootically circulating in wild bird populations worldwide. This increases the risk of entry into poultry production and spill-over to mammalian species, including humans. Better understanding of the ecological and epizootiological networks of these viruses is essential to optimize mitigation measures. Based on full genome sequences of 26 HPAIV samples from Iceland, which were collected between spring and autumn 2022, as well as 1 sample from the 2023 summer period, we show that 3 different genotypes of HPAIV H5N1 clade 2.3.4.4b were circulating within the wild bird population in Iceland in 2022. Furthermore, in 2023 we observed a novel introduction of HPAIV H5N5 of the same clade to Iceland. The data support the role of Iceland as an utmost northwestern distribution area in Europe that might act also as a potential bridging point for intercontinental spread of HPAIV across the North Atlantic.


Influenza A Virus, H5N1 Subtype , Influenza in Birds , Phylogeny , Iceland/epidemiology , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Influenza in Birds/transmission , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/isolation & purification , Genotype , Animals, Wild/virology , Influenza A virus/genetics , Influenza A virus/classification , Influenza A virus/isolation & purification , Genome, Viral , Birds/virology
20.
J Virol ; 98(6): e0062624, 2024 Jun 13.
Article En | MEDLINE | ID: mdl-38747601

Highly pathogenic avian influenza viruses of the H5N1 clade 2.3.4.4b were detected in North America in the winter of 2021/2022. These viruses have spread across the Americas, causing morbidity and mortality in both wild and domestic birds as well as some mammalian species, including cattle. Many surveillance programs for wildlife as well as commercial poultry operations have detected these viruses. In this study, we conducted surveillance of avian species in the urban environment in New York City. We detected highly pathogenic H5N1 viruses in six samples from four different bird species and performed whole-genome sequencing. Sequencing analysis showed the presence of multiple different genotypes. Our work highlights that the interface between animals and humans that may give rise to zoonotic infections or even pandemics is not limited to rural environments and commercial poultry operations but extends into the heart of our urban centers.IMPORTANCEWhile surveillance programs for avian influenza viruses are often focused on migratory routes and their associated stop-over locations or commercial poultry operations, many bird species-including migratory birds-frequent or live in urban green spaces and wetlands. This brings them into contact with a highly dense population of humans and pets, providing an extensive urban animal-human interface in which the general public may have little awareness of circulating infectious diseases. This study focuses on virus surveillance of this interface, combined with culturally responsive science education and community outreach.


Influenza A Virus, H5N1 Subtype , Influenza in Birds , Phylogeny , Animals , New York City/epidemiology , Influenza in Birds/virology , Influenza in Birds/epidemiology , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/isolation & purification , Influenza A Virus, H5N1 Subtype/pathogenicity , Influenza A Virus, H5N1 Subtype/classification , Genotype , Humans , Birds/virology , Whole Genome Sequencing , Animals, Wild/virology , Poultry/virology , Influenza, Human/virology , Influenza, Human/epidemiology , Genome, Viral
...