Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 2.303
Filtrar
1.
PLoS One ; 19(5): e0303371, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38728352

RESUMO

Marek's disease (MD) is an important neoplastic disease caused by serotype 1 Marek's disease virus (MDV-1), which results in severe economic losses worldwide. Despite vaccination practices that have controlled the MD epidemic, current increasing MD-suspected cases indicate the persistent viral infections circulating among vaccinated chicken farms in many countries. However, the lack of available information about phylogeny and molecular characterization of circulating MDV-1 field strains in Taiwan reveals a potential risk in MD outbreaks. This study investigated the genetic characteristics of 18 MDV-1 strains obtained from 17 vaccinated chicken flocks in Taiwan between 2018 and 2020. Based on the sequences of the meq oncogene, the phylogenetic analysis demonstrated that the circulating Taiwanese MDV-1 field strains were predominantly in a single cluster that showed high similarity with strains from countries of the East Asian region. Because the strains were obtained from CVI988/Rispens vaccinated chicken flocks and the molecular characteristics of the Meq oncoprotein showed features like vvMDV and vv+MDV strains, the circulating Taiwanese MDV-1 field strains may have higher virulence compared with vvMDV pathotype. In conclusion, the data presented demonstrates the circulation of hypervirulent MDV-1 strains in Taiwan and highlights the importance of routine surveillance and precaution strategies in response to the emergence of enhanced virulent MDV-1.


Assuntos
Galinhas , Herpesvirus Galináceo 2 , Doença de Marek , Proteínas Oncogênicas Virais , Filogenia , Animais , Galinhas/virologia , Taiwan/epidemiologia , Doença de Marek/virologia , Doença de Marek/prevenção & controle , Herpesvirus Galináceo 2/genética , Herpesvirus Galináceo 2/patogenicidade , Virulência/genética , Proteínas Oncogênicas Virais/genética , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/epidemiologia , Doenças das Aves Domésticas/prevenção & controle , Vacinas contra Doença de Marek/genética , Vacinas contra Doença de Marek/imunologia , Vacinação/veterinária
2.
Nat Commun ; 15(1): 3494, 2024 May 01.
Artigo em Inglês | MEDLINE | ID: mdl-38693163

RESUMO

H9N2 avian influenza viruses (AIVs) are a major concern for the poultry sector and human health in countries where this subtype is endemic. By fitting a model simulating H9N2 AIV transmission to data from a field experiment, we characterise the epidemiology of the virus in a live bird market in Bangladesh. Many supplied birds arrive already exposed to H9N2 AIVs, resulting in many broiler chickens entering the market as infected, and many indigenous backyard chickens entering with pre-existing immunity. Most susceptible chickens become infected within one day spent at the market, owing to high levels of viral transmission within market and short latent periods, as brief as 5.3 hours. Although H9N2 AIV transmission can be substantially reduced under moderate levels of cleaning and disinfection, effective risk mitigation also requires a range of additional interventions targeting markets and other nodes along the poultry production and distribution network.


Assuntos
Galinhas , Vírus da Influenza A Subtipo H9N2 , Influenza Aviária , Animais , Vírus da Influenza A Subtipo H9N2/isolamento & purificação , Vírus da Influenza A Subtipo H9N2/imunologia , Influenza Aviária/transmissão , Influenza Aviária/epidemiologia , Influenza Aviária/virologia , Galinhas/virologia , Bangladesh/epidemiologia , Doenças das Aves Domésticas/transmissão , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/epidemiologia , Modelos Biológicos
3.
Emerg Microbes Infect ; 13(1): 2341142, 2024 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-38581279

RESUMO

H6N6 avian influenza viruses (AIVs) have been widely detected in wild birds, poultry, and even mammals. Recently, H6N6 viruses were reported to be involved in the generation of H5 and H7 subtype viruses. To investigate the emergence, evolutionary pattern, and potential for an epidemic of H6N6 viruses, the complete genomes of 198 H6N6 viruses were analyzed, including 168 H6N6 viruses deposited in the NCBI and GISAID databases from inception to January 2019 and 30 isolates collected from China between November 2014 and January 2019. Using phylogenetic analysis, the 198 strains of H6N6 viruses were identified as 98 genotypes. Molecular clock analysis indicated that the evolution of H6N6 viruses in China was constant and not interrupted by selective pressure. Notably, the laboratory isolates reassorted with six subtype viruses: H6N2, H5N6, H7N9, H5N2, H4N2, and H6N8, resulting in nine novel H6N6 reassortment events. These results suggested that H6N6 viruses can act as an intermediary in the evolution of H5N6, H6N6, and H7N9 viruses. Animal experiments demonstrated that the 10 representative H6N6 viruses showed low pathogenicity in chickens and were capable of infecting mice without prior adaptation. Our findings suggest that H6N6 viruses play an important role in the evolution of AIVs, and it is necessary to continuously monitor and evaluate the potential epidemic of the H6N6 subtype viruses.


Assuntos
Galinhas , Evolução Molecular , Genoma Viral , Vírus da Influenza A , Influenza Aviária , Filogenia , Vírus Reordenados , Animais , China/epidemiologia , Vírus Reordenados/genética , Vírus Reordenados/classificação , Vírus Reordenados/isolamento & purificação , Influenza Aviária/virologia , Influenza Aviária/epidemiologia , Camundongos , Galinhas/virologia , Vírus da Influenza A/genética , Vírus da Influenza A/classificação , Vírus da Influenza A/isolamento & purificação , Genótipo , Humanos
4.
Zhonghua Liu Xing Bing Xue Za Zhi ; 45(4): 574-578, 2024 Apr 10.
Artigo em Chinês | MEDLINE | ID: mdl-38678355

RESUMO

Objective: To identify a novel reassortant H3N2 avian influenza virus using nanopore sequencing technology and analyze its genetic characteristics. Methods: The positive samples of the H3N2 avian influenza virus, collected from the external environment in the farmers' market of Guangzhou, were cultured in chicken embryos. The whole genome was sequenced by targeted amplification and nanopore sequencing technology. The genetic characteristics were analyzed using bioinformatics software. Results: The phylogenetic trees showed that each gene fragment of the strain belonged to the Eurasian evolutionary branch, and the host source was of avian origin. The HA gene was closely related to the origin of the H3N6 virus. The NA gene was closely related to the H3N2 avian influenza virus from 2017 to 2020. The PB1 gene was closely related to the H5N6 avian influenza virus in Guangxi Zhuang Autonomous Region and Fujian Province from 2016 to 2022 and was not related to the PB1 gene of the H5N6 avian influenza epidemic strain in Guangzhou. The other internal gene fragments had complex sources with significant genetic diversity. Molecular characteristics indicated that the strain exhibited the molecular characteristics of a typical low pathogenic avian influenza virus and tended to bind to the receptors of avian origin. On important protein sites related to biological characteristics, this strain had mutations of PB2-L89V, PB1-L473V, NP-A184K, M1-N30D/T215A, and NS1-P42S/N205S. Conclusions: This study identified a novel reassortant H3N2 avian influenza virus by nanopore sequencing, with the PB1 gene derived from the H5N6 avian influenza virus. The virus had a low ability to spread across species, but further exploration was needed to determine whether its pathogenicity to the host was affected.


Assuntos
Vírus da Influenza A Subtipo H3N2 , Influenza Aviária , Sequenciamento por Nanoporos , Filogenia , Vírus Reordenados , Animais , Vírus Reordenados/genética , Vírus da Influenza A Subtipo H3N2/genética , Vírus da Influenza A Subtipo H3N2/isolamento & purificação , Influenza Aviária/virologia , Influenza Aviária/epidemiologia , Genoma Viral , Embrião de Galinha , Galinhas/virologia , Proteínas Virais/genética , Variação Genética
5.
Microb Pathog ; 190: 106638, 2024 May.
Artigo em Inglês | MEDLINE | ID: mdl-38574829

RESUMO

Autophagy plays an important role in the lifecycle of viruses. However, there is currently a lack of systematic research on the relationship between Infectious Bronchitis Virus (IBV) and autophagy. This study aims to investigate the impact of IBV on autophagy and the role of autophagy in viral replication. We observed that IBV infection increased the expression of microtubule-associated protein 1 light chain 3, a marker of autophagy, decreased the expression of sequestosome 1, and led to elevated intracellular LC3 puncta levels. These findings suggest that IBV infection activates the autophagic process in cells. To investigate the impact of autophagy on the replication of IBV, we utilized rapamycin as an autophagy activator and 3-methyladenine as an autophagy inhibitor. Our results indicate that IBV promotes viral replication by inducing autophagy. Further investigation revealed that IBV induces autophagosome formation by inhibiting the mTOR-ULK1 pathway and activating the activity of vacuolar protein sorting 34 (VPS34), autophagy-related gene 14, and the Beclin-1 complex. VPS34 plays a crucial role in this process, as inhibiting VPS34 protein activity enhances cell proliferation after IBV infection. Additionally, inhibiting VPS34 significantly improves the survival rate of IBV-infected chicks, suppresses IBV replication in the kidney, and alleviates tracheal, lung, and kidney damage caused by IBV infection. In summary, IBV infection can induce autophagy by modulating the mTOR/ULK1 signaling pathway and activating the VPS34 complex, while autophagy serves to promote virus replication.


Assuntos
Autofagia , Galinhas , Classe III de Fosfatidilinositol 3-Quinases , Vírus da Bronquite Infecciosa , Replicação Viral , Vírus da Bronquite Infecciosa/fisiologia , Animais , Classe III de Fosfatidilinositol 3-Quinases/metabolismo , Galinhas/virologia , Infecções por Coronavirus/virologia , Infecções por Coronavirus/metabolismo , Sirolimo/farmacologia , Proteína Beclina-1/metabolismo , Proteína Beclina-1/genética , Serina-Treonina Quinases TOR/metabolismo , Transdução de Sinais , Linhagem Celular , Doenças das Aves Domésticas/virologia , Autofagossomos/metabolismo , Autofagossomos/virologia , Chlorocebus aethiops , Proteínas Associadas aos Microtúbulos/metabolismo , Proteínas Associadas aos Microtúbulos/genética
6.
Viruses ; 16(4)2024 Mar 26.
Artigo em Inglês | MEDLINE | ID: mdl-38675851

RESUMO

Avian metapneumovirus (aMPV), classified within the Pneumoviridae family, wreaks havoc on poultry health. It typically causes upper respiratory tract and reproductive tract infections, mainly in turkeys, chickens, and ducks. Four subtypes of AMPV (A, B, C, D) and two unclassified subtypes have been identified, of which subtypes A and B are widely distributed across the world. In January 2024, an outbreak of severe respiratory disease occurred on turkey and chicken farms across different states in the US. Metagenomics sequencing of selected tissue and swab samples confirmed the presence of aMPV subtype B. Subsequently, all samples were screened using an aMPV subtype A and B multiplex real-time RT-PCR kit. Of the 221 farms, 124 (56%) were found to be positive for aMPV-B. All samples were negative for subtype A. Six whole genomes were assembled, five from turkeys and one from chickens; all six assembled genomes showed 99.29 to 99.98% nucleotide identity, indicating a clonal expansion event for aMPV-B within the country. In addition, all six sequences showed 97.74 to 98.58% nucleotide identity with previously reported subtype B sequences, e.g., VCO3/60616, Hungary/657/4, and BR/1890/E1/19. In comparison to these two reference strains, the study sequences showed unique 49-62 amino acid changes across the genome, with maximum changes in glycoprotein (G). One unique AA change from T (Threonine) to I (Isoleucine) at position 153 in G protein was reported only in the chicken aMPV sequence, which differentiated it from turkey sequences. The twelve unique AA changes along with change in polarity of the G protein may indicate that these unique changes played a role in the adaptation of this virus in the US poultry. This is the first documented report of aMPV subtype B in US poultry, highlighting the need for further investigations into its genotypic characterization, pathogenesis, and evolutionary dynamics.


Assuntos
Genoma Viral , Metapneumovirus , Infecções por Paramyxoviridae , Filogenia , Doenças das Aves Domésticas , Perus , Animais , Metapneumovirus/genética , Metapneumovirus/classificação , Metapneumovirus/isolamento & purificação , Infecções por Paramyxoviridae/veterinária , Infecções por Paramyxoviridae/virologia , Infecções por Paramyxoviridae/epidemiologia , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/epidemiologia , Perus/virologia , Estados Unidos/epidemiologia , Galinhas/virologia , Aves Domésticas/virologia , Metagenômica , Surtos de Doenças/veterinária
7.
Viruses ; 16(4)2024 Mar 27.
Artigo em Inglês | MEDLINE | ID: mdl-38675858

RESUMO

Infectious bronchitis virus (IBV) causes a highly contagious respiratory disease in chickens, leading to significant economic losses in the poultry industry worldwide. IBV exhibits a high mutation rate, resulting in the continuous emergence of new variants and strains. A complete genome analysis of IBV is crucial for understanding its characteristics. However, it is challenging to obtain whole-genome sequences from IBV-infected clinical samples due to the low abundance of IBV relative to the host genome. Here, we present a novel approach employing next-generation sequencing (NGS) to directly sequence the complete genome of IBV. Through in silico analysis, six primer pairs were designed to match various genotypes, including the GI-19 lineage of IBV. The primer sets successfully amplified six overlapping fragments by long-range PCR and the size of the amplicons ranged from 3.7 to 6.4 kb, resulting in full coverage of the IBV genome. Furthermore, utilizing Illumina sequencing, we obtained the complete genome sequences of two strains belonging to the GI-19 lineage (QX genotype) from clinical samples, with 100% coverage rates, over 1000 × mean depth coverage, and a high percentage of mapped reads to the reference genomes (96.63% and 97.66%). The reported method significantly improves the whole-genome sequencing of IBVs from clinical samples; thus, it can improve understanding of the epidemiology and evolution of IBVs.


Assuntos
Galinhas , Infecções por Coronavirus , Genoma Viral , Genótipo , Sequenciamento de Nucleotídeos em Larga Escala , Vírus da Bronquite Infecciosa , Filogenia , Doenças das Aves Domésticas , Sequenciamento Completo do Genoma , Vírus da Bronquite Infecciosa/genética , Vírus da Bronquite Infecciosa/isolamento & purificação , Vírus da Bronquite Infecciosa/classificação , Animais , Sequenciamento Completo do Genoma/métodos , Galinhas/virologia , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/epidemiologia , Infecções por Coronavirus/veterinária , Infecções por Coronavirus/virologia , Infecções por Coronavirus/epidemiologia , RNA Viral/genética
8.
Viruses ; 16(4)2024 Apr 04.
Artigo em Inglês | MEDLINE | ID: mdl-38675905

RESUMO

Highly pathogenic avian influenza (HPAI) H5-viruses are circulating in wild birds and are repeatedly introduced to poultry causing outbreaks in the Netherlands since 2014. The largest epizootic ever recorded in Europe was caused by HPAI H5N1 clade 2.3.4.4b viruses in the period 2021-2022. The recent H5-clade 2.3.4.4 viruses were found to differ in their virulence for chickens and ducks. Viruses causing only mild disease may remain undetected, increasing the risk of virus spread to other farms, wild birds and mammals. We developed in ovo models to determine the virulence of HPAI viruses for chickens and ducks, which are fast and have low costs. The virulence of five contemporary H5-viruses was compared studying replication rate, average time to death and virus spread in the embryo. Remarkable differences in virulence were observed between H5-viruses and between poultry species. The H5N1-2021 virus was found to have a fast replication rate in both the chicken and duck in ovo models, but a slower systemic virus dissemination compared to three other H5-clade 2.3.4.4b viruses. The results show the potential of in ovo models to quickly determine the virulence of novel HPAI viruses, and study potential virulence factors which can help to better guide the surveillance in poultry.


Assuntos
Galinhas , Patos , Influenza Aviária , Replicação Viral , Animais , Patos/virologia , Influenza Aviária/virologia , Galinhas/virologia , Virulência , Virus da Influenza A Subtipo H5N1/patogenicidade , Virus da Influenza A Subtipo H5N1/genética , Embrião de Galinha , Doenças das Aves Domésticas/virologia
9.
Viruses ; 16(4)2024 Apr 07.
Artigo em Inglês | MEDLINE | ID: mdl-38675911

RESUMO

Zika virus (ZIKV) remains a public health concern, with epidemics in endemic regions and sporadic outbreaks in new areas posing significant threats. Several mosquito-borne flaviviruses that can cause human illness, including West Nile, Usutu, and St. Louis encephalitis, have associations with birds. However, the susceptibility of chickens to ZIKV and their role in viral epidemiology is not currently known. We investigated the susceptibility of chickens to experimental ZIKV infection using chickens ranging from 1-day-old chicks to 6-week-old birds. ZIKV caused no clinical signs in chickens of all age groups tested. Viral RNA was detected in the blood and tissues during the first 5 days post-inoculation in 1-day and 4-day-old chicks inoculated with a high viral dose, but ZIKV was undetectable in 6-week-old birds at all timepoints. Minimal antibody responses were observed in 6-week-old birds, and while present in younger chicks, they waned by 28 days post-infection. Innate immune responses varied significantly between age groups. Robust type I interferon and inflammasome responses were measured in older chickens, while limited innate immune activation was observed in younger chicks. Signal transducer and activator of transcription 2 (STAT2) is a major driver of host restriction to ZIKV, and chicken STAT2 is distinct from human STAT2, potentially contributing to the observed resistance to ZIKV infection. The rapid clearance of the virus in older chickens coincided with an effective innate immune response, highlighting age-dependent susceptibility. Our study indicates that chickens are not susceptible to productive ZIKV infection and are unlikely to play a role in the ZIKV epidemiology.


Assuntos
Galinhas , Imunidade Inata , Doenças das Aves Domésticas , Infecção por Zika virus , Zika virus , Animais , Galinhas/virologia , Infecção por Zika virus/imunologia , Infecção por Zika virus/virologia , Zika virus/imunologia , Suscetibilidade a Doenças , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/imunologia , Fatores Etários , Anticorpos Antivirais/sangue , RNA Viral/genética
10.
Viruses ; 16(4)2024 Apr 14.
Artigo em Inglês | MEDLINE | ID: mdl-38675946

RESUMO

Infectious bronchitis virus (IBV) is a highly contagious Gammacoronavirus causing moderate to severe respiratory infection in chickens. Understanding the initial antiviral response in the respiratory mucosa is crucial for controlling viral spread. We aimed to characterize the impact of IBV Delmarva (DMV)/1639 and IBV Massachusetts (Mass) 41 at the primary site of infection, namely, in chicken tracheal epithelial cells (cTECs) in vitro and the trachea in vivo. We hypothesized that some elements of the induced antiviral responses are distinct in both infection models. We inoculated cTECs and infected young specific pathogen-free (SPF) chickens with IBV DMV/1639 or IBV Mass41, along with mock-inoculated controls, and studied the transcriptome using RNA-sequencing (RNA-seq) at 3 and 18 h post-infection (hpi) for cTECs and at 4 and 11 days post-infection (dpi) in the trachea. We showed that IBV DMV/1639 and IBV Mass41 replicate in cTECs in vitro and the trachea in vivo, inducing host mRNA expression profiles that are strain- and time-dependent. We demonstrated the different gene expression patterns between in vitro and in vivo tracheal IBV infection. Ultimately, characterizing host-pathogen interactions with various IBV strains reveals potential mechanisms for inducing and modulating the immune response during IBV infection in the chicken trachea.


Assuntos
Galinhas , Infecções por Coronavirus , Perfilação da Expressão Gênica , Vírus da Bronquite Infecciosa , Doenças das Aves Domésticas , Traqueia , Animais , Traqueia/virologia , Traqueia/imunologia , Galinhas/virologia , Vírus da Bronquite Infecciosa/fisiologia , Vírus da Bronquite Infecciosa/imunologia , Infecções por Coronavirus/veterinária , Infecções por Coronavirus/imunologia , Infecções por Coronavirus/virologia , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/imunologia , Doenças das Aves Domésticas/genética , Células Epiteliais/virologia , Células Epiteliais/imunologia , Transcriptoma , Interações Hospedeiro-Patógeno/imunologia , Interações Hospedeiro-Patógeno/genética , Replicação Viral , Organismos Livres de Patógenos Específicos
11.
Emerg Microbes Infect ; 13(1): 2343912, 2024 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-38629574

RESUMO

Human infections with the H7N9 influenza virus have been eliminated in China through vaccination of poultry; however, the H7N9 virus has not yet been eradicated from poultry. Carefully analysis of H7N9 viruses in poultry that have sub-optimal immunity may provide a unique opportunity to witness the evolution of highly pathogenic avian influenza virus in the context of vaccination. Between January 2020 and June 2023, we isolated 16 H7N9 viruses from samples we collected during surveillance and samples that were sent to us for disease diagnosis. Genetic analysis indicated that these viruses belonged to a single genotype previously detected in poultry. Antigenic analysis indicated that 12 of the 16 viruses were antigenically close to the H7-Re4 vaccine virus that has been used since January 2022, and the other four viruses showed reduced reactivity with the vaccine. Animal studies indicated that all 16 viruses were nonlethal in mice, and four of six viruses showed reduced virulence in chickens upon intranasally inoculation. Importantly, the H7N9 viruses detected in this study exclusively bound to the avian-type receptors, having lost the capacity to bind to human-type receptors. Our study shows that vaccination slows the evolution of H7N9 virus by preventing its reassortment with other viruses and eliminates a harmful characteristic of H7N9 virus, namely its ability to bind to human-type receptors.


Assuntos
Galinhas , Subtipo H7N9 do Vírus da Influenza A , Vacinas contra Influenza , Influenza Aviária , Vacinação , Animais , Subtipo H7N9 do Vírus da Influenza A/genética , Subtipo H7N9 do Vírus da Influenza A/imunologia , Subtipo H7N9 do Vírus da Influenza A/patogenicidade , Galinhas/virologia , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/administração & dosagem , Influenza Aviária/virologia , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Camundongos , Humanos , China , Evolução Molecular , Influenza Humana/prevenção & controle , Influenza Humana/virologia , Influenza Humana/imunologia , Camundongos Endogâmicos BALB C , Virulência , Filogenia , Feminino , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/prevenção & controle , Aves Domésticas/virologia
12.
Vet Microbiol ; 293: 110094, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38636175

RESUMO

Infectious bursa disease (IBD) is an acute, highly contactable, lethal, immunosuppressive infectious disease caused by the Infectious bursa disease virus (IBDV). Currently, the emerged novel variant IBDV (nVarIBDV) and the sustainedly prevalent very virulent IBDV (vvIBDV) are the two most prevalent strains of IBDV in China. The antigenic properties of the two prevalent strains differed significantly, which led to the escape of nVarIBDV from the immune protection provided by the existing vvIBDV vaccine. However, the molecular basis of the nVarIBDV immune escape remains unclear. In this study, we demonstrated, for the first time, that residues 252, 254, and 256 in the PDE of VP2 are involved in the immune escape of the emerging nVarIBDV. Firstly, the IFA-mediated antigen-antibody affinity assay showed that PBC and PDE of VP2 could affect the affinity of vvIBDV antiserum to VP2, of which PDE was more significant. The key amino acids of PDE influencing the antigen-antibody affinity were also identified, with G254N being the most significant, followed by V252I and I256V. Then the mutated virus with point or combined mutations was rescued by reverse genetics. it was further demonstrated that mutations of V252I, G254N, and I256V in PDE could individually or collaboratively reduce antigen-antibody affinity and interfere with antiserum neutralization, with G254N being the most significant. This study revealed the reasons for the widespread prevalence of nVarIBDV in immunized chicken flocks and provided innovative ideas for designing novel vaccines that match the antigen of the epidemic strain.


Assuntos
Infecções por Birnaviridae , Proteínas do Capsídeo , Galinhas , Evasão da Resposta Imune , Vírus da Doença Infecciosa da Bursa , Doenças das Aves Domésticas , Vírus da Doença Infecciosa da Bursa/genética , Vírus da Doença Infecciosa da Bursa/imunologia , Animais , Galinhas/virologia , Proteínas do Capsídeo/genética , Proteínas do Capsídeo/imunologia , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/imunologia , Infecções por Birnaviridae/veterinária , Infecções por Birnaviridae/virologia , Infecções por Birnaviridae/imunologia , China , Anticorpos Antivirais/imunologia , Mutação , Vacinas Virais/imunologia , Proteínas Estruturais Virais
13.
J Virol ; 98(4): e0024824, 2024 Apr 16.
Artigo em Inglês | MEDLINE | ID: mdl-38466094

RESUMO

The H9N2 avian influenza virus (AIV) represents a significant risk to both the poultry industry and public health. Our surveillance efforts in China have revealed a growing trend of recent H9N2 AIV strains exhibiting a loss of hemagglutination activity at 37°C, posing challenges to detection and monitoring protocols. This study identified a single K141N substitution in the hemagglutinin (HA) glycoprotein as the culprit behind this diminished hemagglutination activity. The study evaluated the evolutionary dynamics of residue HA141 and studied the impact of the N141K substitution on aspects such as virus growth, thermostability, receptor-binding properties, and antigenic properties. Our findings indicate a polymorphism at residue 141, with the N variant becoming increasingly prevalent in recent Chinese H9N2 isolates. Although both wild-type and N141K mutant strains exclusively target α,2-6 sialic acid receptors, the N141K mutation notably impedes the virus's ability to bind to these receptors. Despite the mutation exerting minimal influence on viral titers, antigenicity, and pathogenicity in chicken embryos, it significantly enhances viral thermostability and reduces plaque size on Madin-Darby canine kidney (MDCK) cells. Additionally, the N141K mutation leads to decreased expression levels of HA protein in both MDCK cells and eggs. These findings highlight the critical role of the K141N substitution in altering the hemagglutination characteristics of recent H9N2 AIV strains under elevated temperatures. This emphasizes the need for ongoing surveillance and genetic analysis of circulating H9N2 AIV strains to develop effective control and prevention measures.IMPORTANCEThe H9N2 subtype of avian influenza virus (AIV) is currently the most prevalent low-pathogenicity AIV circulating in domestic poultry globally. Recently, there has been an emerging trend of H9N2 AIV strains acquiring increased affinity for human-type receptors and even losing their ability to bind to avian-type receptors, which raises concerns about their pandemic potential. In China, there has been a growing number of H9N2 AIV strains that have lost their ability to agglutinate chicken red blood cells, leading to false-negative results during surveillance efforts. In this study, we identified a K141N mutation in the HA protein of H9N2 AIV to be responsible for the loss of hemagglutination activity. This finding provides insight into the development of effective surveillance, prevention, and control strategies to mitigate the threat posed by H9N2 AIV to both animal and human health.


Assuntos
Substituição de Aminoácidos , Hemaglutinação , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Vírus da Influenza A Subtipo H9N2 , Influenza Aviária , Mutação , Animais , Embrião de Galinha , Cães , Humanos , Galinhas/virologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/química , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Glicoproteínas de Hemaglutininação de Vírus da Influenza/metabolismo , Vírus da Influenza A Subtipo H9N2/genética , Vírus da Influenza A Subtipo H9N2/crescimento & desenvolvimento , Vírus da Influenza A Subtipo H9N2/imunologia , Vírus da Influenza A Subtipo H9N2/metabolismo , Vírus da Influenza A Subtipo H9N2/patogenicidade , Influenza Aviária/virologia , Aves Domésticas , Feminino , Camundongos , Linhagem Celular , Evolução Molecular , Temperatura , Receptores Virais/metabolismo
14.
J Virol ; 98(4): e0194123, 2024 Apr 16.
Artigo em Inglês | MEDLINE | ID: mdl-38470143

RESUMO

Influenza A viruses (IAVs) can overcome species barriers by adaptation of the receptor-binding site of the hemagglutinin (HA). To initiate infection, HAs bind to glycan receptors with terminal sialic acids, which are either N-acetylneuraminic acid (NeuAc) or N-glycolylneuraminic acid (NeuGc); the latter is mainly found in horses and pigs but not in birds and humans. We investigated the influence of previously identified equine NeuGc-adapting mutations (S128T, I130V, A135E, T189A, and K193R) in avian H7 IAVs in vitro and in vivo. We observed that these mutations negatively affected viral replication in chicken cells but not in duck cells and positively affected replication in horse cells. In vivo, the mutations reduced virus virulence and mortality in chickens. Ducks excreted high viral loads longer than chickens, although they appeared clinically healthy. To elucidate why these viruses infected chickens and ducks despite the absence of NeuGc, we re-evaluated the receptor binding of H7 HAs using glycan microarray and flow cytometry studies. This re-evaluation demonstrated that mutated avian H7 HAs also bound to α2,3-linked NeuAc and sialyl-LewisX, which have an additional fucose moiety in their terminal epitope, explaining why infection of ducks and chickens was possible. Interestingly, the α2,3-linked NeuAc and sialyl-LewisX epitopes were only bound when presented on tri-antennary N-glycans, emphasizing the importance of investigating the fine receptor specificities of IAVs. In conclusion, the binding of NeuGc-adapted H7 IAV to tri-antennary N-glycans enables viral replication and shedding by chickens and ducks, potentially facilitating interspecies transmission of equine-adapted H7 IAVs.IMPORTANCEInfluenza A viruses (IAVs) cause millions of deaths and illnesses in birds and mammals each year. The viral surface protein hemagglutinin initiates infection by binding to host cell terminal sialic acids. Hemagglutinin adaptations affect the binding affinity to these sialic acids and the potential host species targeted. While avian and human IAVs tend to bind to N-acetylneuraminic acid (sialic acid), equine H7 viruses prefer binding to N-glycolylneuraminic acid (NeuGc). To better understand the function of NeuGc-specific adaptations in hemagglutinin and to elucidate interspecies transmission potential NeuGc-adapted viruses, we evaluated the effects of NeuGc-specific mutations in avian H7 viruses in chickens and ducks, important economic hosts and reservoir birds, respectively. We also examined the impact on viral replication and found a binding affinity to tri-antennary N-glycans containing different terminal epitopes. These findings are significant as they contribute to the understanding of the role of receptor binding in avian influenza infection.


Assuntos
Galinhas , Patos , Cavalos , Vírus da Influenza A , Influenza Aviária , Ácidos Neuramínicos , Animais , Humanos , Galinhas/genética , Galinhas/metabolismo , Galinhas/virologia , Patos/genética , Patos/metabolismo , Patos/virologia , Epitopos/química , Epitopos/metabolismo , Glicoproteínas de Hemaglutininação de Vírus da Influenza/química , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Glicoproteínas de Hemaglutininação de Vírus da Influenza/metabolismo , Cavalos/genética , Cavalos/metabolismo , Cavalos/virologia , Vírus da Influenza A/química , Vírus da Influenza A/classificação , Vírus da Influenza A/metabolismo , Influenza Aviária/genética , Influenza Aviária/transmissão , Influenza Aviária/virologia , Mutação , Ácido N-Acetilneuramínico/química , Ácido N-Acetilneuramínico/metabolismo , Ácidos Neuramínicos/química , Ácidos Neuramínicos/metabolismo , Receptores Virais/química , Receptores Virais/genética , Receptores Virais/metabolismo , Suínos/virologia , Zoonoses Virais/metabolismo , Zoonoses Virais/transmissão , Zoonoses Virais/virologia
15.
Virus Res ; 344: 199348, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38467378

RESUMO

Avian influenza virus subtype H9N2 is endemic in commercial poultry in Tunisia. This subtype affects poultry and wild birds in Tunisia and poses a potential zoonotic risk. Tunisian H9N2 strains carry, in their hemagglutinins, the human-like marker 226 L that is most influential in avian-to-human viral transmission. For a better understanding of how ecological aspects of the H9N2 virus and its circulation in poultry, migratory birds and environment shapes the spread of the dissemination of H9N2 in Tunisia, herein, we investigate the epidemiological, evolutionary and zoonotic potential of seven H9N2 poultry isolates and sequence their whole genome. Phylogeographic and phylodymanic analysis were used to examine viral spread within and among wild birds, poultry and environment at geographical scales. Genetic evolution results showed that the eight gene sequences of Tunisian H9N2 AIV were characterized by molecular markers involved with virulence and mammalian infections. The geographical distribution of avian influenza virus appears as a network interconnecting countries in Europe, Asia, North Africa and West Africa. The spatiotemporal dynamics analysis showed that the H9N2 virus was transmitted from Tunisia to neighboring countries notably Libya and Algeria. Interestingly, this study also revealed, for the first time, that there was a virus transmission between Tunisia and Morocco. Bayesian analysis showed exchanges between H9N2 strains of Tunisia and those of the Middle Eastern countries, analysis of host traits showed that duck, wild birds and environment were ancestry related to chicken. The subtypes phylodynamic showed that PB1 segment was under multiple inter-subtype reassortment events with H10N7, H12N5, H5N2 and H6N1 and that PB2 was also a subject of inter-subtype reassortment with H10N4.


Assuntos
Vírus da Influenza A Subtipo H9N2 , Influenza Aviária , Filogenia , Filogeografia , Animais , Vírus da Influenza A Subtipo H9N2/genética , Vírus da Influenza A Subtipo H9N2/classificação , Vírus da Influenza A Subtipo H9N2/isolamento & purificação , Tunísia/epidemiologia , Influenza Aviária/virologia , Influenza Aviária/epidemiologia , Influenza Aviária/transmissão , Aves Domésticas/virologia , Evolução Molecular , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/epidemiologia , Genoma Viral , Animais Selvagens/virologia , Aves/virologia , Galinhas/virologia
16.
Science ; 382(6676): 1276-1281, 2023 12 15.
Artigo em Inglês | MEDLINE | ID: mdl-38096384

RESUMO

The pronounced growth in livestock populations since the 1950s has altered the epidemiological and evolutionary trajectory of their associated pathogens. For example, Marek's disease virus (MDV), which causes lymphoid tumors in chickens, has experienced a marked increase in virulence over the past century. Today, MDV infections kill >90% of unvaccinated birds, and controlling it costs more than US$1 billion annually. By sequencing MDV genomes derived from archeological chickens, we demonstrate that it has been circulating for at least 1000 years. We functionally tested the Meq oncogene, one of 49 viral genes positively selected in modern strains, demonstrating that ancient MDV was likely incapable of driving tumor formation. Our results demonstrate the power of ancient DNA approaches to trace the molecular basis of virulence in economically relevant pathogens.


Assuntos
Galinhas , Herpesvirus Galináceo 2 , Doença de Marek , Animais , Galinhas/virologia , Herpesvirus Galináceo 2/classificação , Herpesvirus Galináceo 2/genética , Herpesvirus Galináceo 2/patogenicidade , Linfoma/virologia , Doença de Marek/história , Doença de Marek/virologia , Virulência/genética , Filogenia
17.
J Virol ; 97(11): e0112523, 2023 Nov 30.
Artigo em Inglês | MEDLINE | ID: mdl-37902398

RESUMO

IMPORTANCE: The Avibirnavirus infectious bursal disease virus is still an important agent which largely threatens global poultry farming industry economics. VP3 is a multifunctional scaffold structural protein that is involved in virus morphogenesis and the regulation of diverse cellular signaling pathways. However, little is known about the roles of VP3 phosphorylation during the IBDV life cycle. In this study, we determined that IBDV infection induced the upregulation of Cdc7 expression and phosphorylated the VP3 Ser13 site to promote viral replication. Moreover, we confirmed that the negative charge addition of phosphoserine on VP3 at the S13 site was essential for IBDV proliferation. This study provides novel insight into the molecular mechanisms of VP3 phosphorylation-mediated regulation of IBDV replication.


Assuntos
Avibirnavirus , Proteínas de Ciclo Celular , Galinhas , Vírus da Doença Infecciosa da Bursa , Proteínas Serina-Treonina Quinases , Proteínas Estruturais Virais , Replicação Viral , Animais , Avibirnavirus/química , Avibirnavirus/crescimento & desenvolvimento , Avibirnavirus/metabolismo , Infecções por Birnaviridae/enzimologia , Infecções por Birnaviridae/metabolismo , Infecções por Birnaviridae/veterinária , Infecções por Birnaviridae/virologia , Proteínas do Capsídeo/química , Proteínas do Capsídeo/metabolismo , Proteínas de Ciclo Celular/metabolismo , Galinhas/virologia , Vírus da Doença Infecciosa da Bursa/química , Vírus da Doença Infecciosa da Bursa/metabolismo , Fosforilação , Proteínas Serina-Treonina Quinases/metabolismo , Proteínas Estruturais Virais/química , Proteínas Estruturais Virais/metabolismo
18.
J Virol ; 97(11): e0132223, 2023 Nov 30.
Artigo em Inglês | MEDLINE | ID: mdl-37882519

RESUMO

IMPORTANCE: Chickens immunized with the infectious laryngotracheitis chicken embryo origin (CEO) vaccine (Medivac, PT Medion Farma Jaya) experience adverse reactions, hindering its safety and effective use in poultry flocks. To improve the effect of the vaccine, we sought to find a strategy to alleviate the respiratory reactions associated with the vaccine. Here, we confirmed that co-administering the CEO vaccine with chIL-2 by oral delivery led to significant alleviation of the vaccine reactions in chickens after immunization. Furthermore, we found that the co-administration of chIL-2 with the CEO vaccine reduced the clinical signs of the CEO vaccine while enhancing natural killer cells and cytotoxic T lymphocyte response to decrease viral loads in their tissues, particularly in the trachea and conjunctiva. Importantly, we demonstrated that the chIL-2 treatment can ameliorate the replication of the CEO vaccine without compromising its effectiveness. This study provides new insights into further applications of chIL-2 and a promising strategy for alleviating the adverse reaction of vaccines.


Assuntos
Galinhas , Infecções por Herpesviridae , Herpesvirus Galináceo 1 , Interleucina-2 , Células Matadoras Naturais , Linfócitos T Citotóxicos , Vacinas Virais , Animais , Administração Oral , Galinhas/imunologia , Galinhas/virologia , Túnica Conjuntiva/virologia , Infecções por Herpesviridae/imunologia , Infecções por Herpesviridae/prevenção & controle , Infecções por Herpesviridae/veterinária , Infecções por Herpesviridae/virologia , Herpesvirus Galináceo 1/imunologia , Interleucina-2/administração & dosagem , Interleucina-2/imunologia , Células Matadoras Naturais/imunologia , Doenças das Aves Domésticas/imunologia , Doenças das Aves Domésticas/prevenção & controle , Doenças das Aves Domésticas/virologia , Doenças Respiratórias/imunologia , Doenças Respiratórias/prevenção & controle , Doenças Respiratórias/veterinária , Doenças Respiratórias/virologia , Linfócitos T Citotóxicos/imunologia , Traqueia/virologia , Carga Viral , Vacinas Virais/administração & dosagem , Vacinas Virais/efeitos adversos , Vacinas Virais/biossíntese , Vacinas Virais/imunologia
19.
Science ; 382(6667): 140-141, 2023 10 13.
Artigo em Inglês | MEDLINE | ID: mdl-37824660
20.
J Virol ; 97(10): e0071623, 2023 10 31.
Artigo em Inglês | MEDLINE | ID: mdl-37737586

RESUMO

IMPORTANCE: Marek's disease virus (MDV) is a ubiquitous chicken pathogen that inflicts a large economic burden on the poultry industry, despite worldwide vaccination programs. MDV is only partially controlled by available vaccines, and the virus retains the ability to replicate and spread between vaccinated birds. Following an initial infection, MDV enters a latent state and integrates into host telomeres and this may be a prerequisite for malignant transformation, which is usually fatal. To understand the mechanism that underlies the dynamic relationship between integrated-latent and reactivated MDV, we have characterized integrated MDV (iMDV) genomes and their associated telomeres. This revealed a single orientation among iMDV genomes and the loss of some terminal sequences that is consistent with integration by homology-directed recombination and excision via a telomere-loop-mediated process.


Assuntos
Galinhas , Genoma Viral , Herpesvirus Galináceo 2 , Recombinação Homóloga , Doença de Marek , Telômero , Integração Viral , Animais , Galinhas/virologia , Genoma Viral/genética , Herpesvirus Galináceo 2/genética , Doença de Marek/genética , Doença de Marek/virologia , Doenças das Aves Domésticas/genética , Doenças das Aves Domésticas/virologia , Telômero/genética , Vacinas Virais/imunologia , Ativação Viral , Latência Viral , Integração Viral/genética
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA
...