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1.
Onderstepoort J Vet Res ; 91(1): e1-e7, 2024 Apr 15.
Article in English | MEDLINE | ID: mdl-38708767

ABSTRACT

Newcastle disease (ND) is endemic in Angola. Several outbreaks of ND occurred in small backyard flocks and village chickens with high mortality in the southern provinces of the country, Cunene, Namibe and Huíla, in 2016 and 2018. In those years, 15 virulent ND virus (NDV) strains were isolated and grouped within subgenotype 2 of genotype VII (subgenotype VII.2). We now present a study on the thermostability of the isolates, aiming at the selection of the most thermostable strains that, after being genetically modified to reduce their virulence, can be adapted to the production of vaccines less dependent on cold chain and more adequate to protect native chickens against ND. Heat-inactivation kinetics of haemagglutinin (Ha) activity and infectivity (I) of the isolates were determined by incubating aliquots of virus at 56 °C for different time intervals. The two isolates from Namibe province showed a decrease in infectivity of 2 log10 in ≤ 10 min, therefore belonging to the I-phenotype, but while the NB1 isolate from 2016 maintained the Ha activity up to 30 min and was classified as thermostable virus (I-Ha+), the Ha activity of the 2018 NB2 isolate decreased by 2 log2 in 30 min, being classified as a thermolabile virus (I-Ha-). Of the 13 NDV isolates from Huíla province, 10 isolates were classified as thermostable, eight with phenotype I+Ha+ and 2 with phenotype I-Ha+. The other three isolates from this province were classified as thermolabile viruses (I-Ha-).Contribution: This study will contribute to the control and/or eradication of Newcastle disease virus in Angola. The thermostable viral strains isolated from chickens in the country can be genetically manipulated by reverse genetic technology in order to reduce their virulence and use them as a vaccine in the remote areas of Angola.


Subject(s)
Chickens , Newcastle Disease , Newcastle disease virus , Poultry Diseases , Newcastle disease virus/pathogenicity , Newcastle disease virus/genetics , Newcastle disease virus/classification , Animals , Newcastle Disease/virology , Newcastle Disease/epidemiology , Angola/epidemiology , Virulence , Poultry Diseases/virology , Poultry Diseases/epidemiology , Hot Temperature
2.
Sci Rep ; 14(1): 10741, 2024 05 10.
Article in English | MEDLINE | ID: mdl-38730036

ABSTRACT

The majority of pigeon paramyxovirus type 1 (PPMV-1) strains are generally non-pathogenic to chickens; however, they can induce severe illness and high mortality rates in pigeons, leading to substantial economic repercussions. The genomes of 11 PPMV-1 isolates from deceased pigeons on meat pigeon farms during passive monitoring from 2009 to 2012 were sequenced and analyzed using polymerase chain reaction and phylogenetic analysis. The complete genome lengths of 11 isolates were approximately 15,192 nucleotides, displaying a consistent gene order of 3'-NP-P-M-F-HN-L-5'. ALL isolates exhibited the characteristic motif of 112RRQKRF117 at the fusion protein cleavage site, which is characteristic of velogenic Newcastle disease virus. Moreover, multiple mutations have been identified within the functional domains of the F and HN proteins, encompassing the fusion peptide, heptad repeat region, transmembrane domains, and neutralizing epitopes. Phylogenetic analysis based on sequences of the F gene unveiled that all isolates clustered within genotype VI in class II. Further classification identified at least two distinct sub-genotypes, with seven isolates classified as sub-genotype VI.2.1.1.2.2, whereas the others were classified as sub-genotype VI.2.1.1.2.1. This study suggests that both sub-genotypes were implicated in severe disease manifestation among meat pigeons, with sub-genotype VI.2.1.1.2.2 displaying an increasing prevalence among Shanghai's meat pigeon population since 2011. These results emphasize the value of developing pigeon-specific vaccines and molecular diagnostic tools for monitoring and proactively managing potential PPMV-1 outbreaks.


Subject(s)
Columbidae , Genome, Viral , Newcastle Disease , Newcastle disease virus , Phylogeny , Animals , Columbidae/virology , China/epidemiology , Newcastle disease virus/genetics , Newcastle disease virus/isolation & purification , Newcastle disease virus/classification , Newcastle Disease/virology , Newcastle Disease/epidemiology , Genotype , Farms , Meat/virology
3.
Vet Res ; 55(1): 58, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38715081

ABSTRACT

The haemagglutinin-neuraminidase (HN) protein, a vital membrane glycoprotein, plays a pivotal role in the pathogenesis of Newcastle disease virus (NDV). Previously, we demonstrated that a mutation in the HN protein is essential for the enhanced virulence of JS/7/05/Ch, a velogenic variant NDV strain originating from the mesogenic vaccine strain Mukteswar. Here, we explored the effects of the HN protein during viral infection in vitro using three viruses: JS/7/05/Ch, Mukteswar, and an HN-replacement chimeric NDV, JS/MukHN. Through microscopic observation, CCK-8, and LDH release assays, we demonstrated that compared with Mukteswar and JS/MukHN, JS/7/05/Ch intensified the cellular damage and mortality attributed to the mutant HN protein. Furthermore, JS/7/05/Ch induced greater levels of apoptosis, as evidenced by the activation of caspase-3/8/9. Moreover, JS/7/05/Ch promoted autophagy, leading to increased autophagosome formation and autophagic flux. Subsequent pharmacological experiments revealed that inhibition of apoptosis and autophagy significantly impacted virus replication and cell viability in the JS/7/05/Ch-infected group, whereas less significant effects were observed in the other two infected groups. Notably, the mutant HN protein enhanced JS/7/05/Ch-induced apoptosis and autophagy by suppressing NF-κB activation, while it mitigated the effects of NF-κB on NDV infection. Overall, our study offers novel insights into the mechanisms underlying the increased virulence of NDV and serves as a reference for the development of vaccines.


Subject(s)
Apoptosis , HN Protein , NF-kappa B , Newcastle Disease , Newcastle disease virus , Newcastle disease virus/physiology , Newcastle disease virus/genetics , Newcastle disease virus/pathogenicity , Animals , HN Protein/genetics , HN Protein/metabolism , Newcastle Disease/virology , NF-kappa B/metabolism , Poultry Diseases/virology , Chickens , Chick Embryo
4.
J Virol ; 98(5): e0001624, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38563732

ABSTRACT

Tumor necrosis factor receptor-associated factor family member-associated NF-κB activator-binding kinase 1 (TBK1) plays a key role in the induction of the type 1 interferon (IFN-I) response, which is an important component of innate antiviral defense. Viruses target calcium (Ca2+) signaling networks, which participate in the regulation of the viral life cycle, as well as mediate the host antiviral response. Although many studies have focused on the role of Ca2+ signaling in the regulation of IFN-I, the relationship between Ca2+ and TBK1 in different infection models requires further elucidation. Here, we examined the effects of the Newcastle disease virus (NDV)-induced increase in intracellular Ca2+ levels on the suppression of host antiviral responses. We demonstrated that intracellular Ca2+ increased significantly during NDV infection, leading to impaired IFN-I production and antiviral immunity through the activation of calcineurin (CaN). Depletion of Ca²+ was found to lead to a significant increase in virus-induced IFN-I production resulting in the inhibition of viral replication. Mechanistically, the accumulation of Ca2+ in response to viral infection increases the phosphatase activity of CaN, which in turn dephosphorylates and inactivates TBK1 in a Ca2+-dependent manner. Furthermore, the inhibition of CaN on viral replication was counteracted in TBK1 knockout cells. Together, our data demonstrate that NDV hijacks Ca2+ signaling networks to negatively regulate innate immunity via the CaN-TBK1 signaling axis. Thus, our findings not only identify the mechanism by which viruses exploit Ca2+ signaling to evade the host antiviral response but also, more importantly, highlight the potential role of Ca2+ homeostasis in the viral innate immune response.IMPORTANCEViral infections disrupt intracellular Ca2+ homeostasis, which affects the regulation of various host processes to create conditions that are conducive for their own proliferation, including the host immune response. The mechanism by which viruses trigger TBK1 activation and IFN-I induction through viral pathogen-associated molecular patterns has been well defined. However, the effects of virus-mediated Ca2+ imbalance on the IFN-I pathway requires further elucidation, especially with respect to TBK1 activation. Herein, we report that NDV infection causes an increase in intracellular free Ca2+ that leads to activation of the serine/threonine phosphatase CaN, which subsequently dephosphorylates TBK1 and negatively regulates IFN-I production. Furthermore, depletion of Ca2+ or inhibition of CaN activity exerts antiviral effects by promoting the production of IFN-I and inhibiting viral replication. Thus, our results reveal the potential role of Ca2+ in the innate immune response to viruses and provide a theoretical reference for the treatment of viral infectious diseases.


Subject(s)
Calcineurin , Calcium , Immunity, Innate , Interferon Type I , Newcastle disease virus , Protein Serine-Threonine Kinases , Virus Replication , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Newcastle disease virus/immunology , Animals , Calcineurin/metabolism , Humans , Calcium/metabolism , Interferon Type I/metabolism , Interferon Type I/immunology , Phosphorylation , Newcastle Disease/immunology , Newcastle Disease/virology , Newcastle Disease/metabolism , Calcium Signaling , Cell Line , HEK293 Cells
5.
Viruses ; 16(4)2024 Apr 10.
Article in English | MEDLINE | ID: mdl-38675926

ABSTRACT

The transcription and replication of the Newcastle disease virus (NDV) strictly rely on the viral ribonucleoprotein (RNP) complex, which is composed of viral NP, P, L and RNA. However, it is not known whether other viral non-RNP proteins participate in this process for viral self-regulation. In this study, we used a minigenome (MG) system to identify the regulatory role of the viral non-RNP proteins V, M, W, F and HN. Among them, V significantly reduced MG-encoded reporter activity compared with the other proteins and inhibited the synthesis of viral mRNA and cRNA. Further, V interacted with NP. A mutation in residue W195 of V diminished V-NP interaction and inhibited inclusion body (IB) formation in NP-P-L-cotransfected cells. Furthermore, a reverse-genetics system for the highly virulent strain F48E9 was established. The mutant rF48E9-VW195R increased viral replication and apparently enhanced IB formation. In vivo experiments demonstrated that rF48E9-VW195R decreased virulence and retarded time of death. Overall, the results indicate that the V-NP interaction of the W195 mutant V decreased, which regulated viral RNA synthesis, IB formation, viral replication and pathogenicity. This study provides insight into the self-regulation of non-RNP proteins in paramyxoviruses.


Subject(s)
Newcastle disease virus , Viral Proteins , Virus Replication , Newcastle disease virus/genetics , Newcastle disease virus/physiology , Newcastle disease virus/metabolism , Animals , Viral Proteins/metabolism , Viral Proteins/genetics , Nucleoproteins/metabolism , Nucleoproteins/genetics , Newcastle Disease/virology , Newcastle Disease/metabolism , Cell Line , Gene Expression Regulation, Viral , RNA, Viral/genetics , RNA, Viral/metabolism , Chickens , Virulence , Protein Binding , Mutation
6.
J Virol ; 98(3): e0191523, 2024 Mar 19.
Article in English | MEDLINE | ID: mdl-38334327

ABSTRACT

As an intrinsic cellular mechanism responsible for the internalization of extracellular ligands and membrane components, caveolae-mediated endocytosis (CavME) is also exploited by certain pathogens for endocytic entry [e.g., Newcastle disease virus (NDV) of paramyxovirus]. However, the molecular mechanisms of NDV-induced CavME remain poorly understood. Herein, we demonstrate that sialic acid-containing gangliosides, rather than glycoproteins, were utilized by NDV as receptors to initiate the endocytic entry of NDV into HD11 cells. The binding of NDV to gangliosides induced the activation of a non-receptor tyrosine kinase, Src, leading to the phosphorylation of caveolin-1 (Cav1) and dynamin-2 (Dyn2), which contributed to the endocytic entry of NDV. Moreover, an inoculation of cells with NDV-induced actin cytoskeletal rearrangement through Src to facilitate NDV entry via endocytosis and direct fusion with the plasma membrane. Subsequently, unique members of the Rho GTPases family, RhoA and Cdc42, were activated by NDV in a Src-dependent manner. Further analyses revealed that RhoA and Cdc42 regulated the activities of specific effectors, cofilin and myosin regulatory light chain 2, responsible for actin cytoskeleton rearrangement, through diverse intracellular signaling cascades. Taken together, our results suggest that an inoculation of NDV-induced Src-mediated cellular activation by binding to ganglioside receptors. This process orchestrated NDV endocytic entry by modulating the activities of caveolae-associated Cav1 and Dyn2, as well as specific Rho GTPases and downstream effectors. IMPORTANCE: In general, it is known that the paramyxovirus gains access to host cells through direct penetration at the plasma membrane; however, emerging evidence suggests more complex entry mechanisms for paramyxoviruses. The endocytic entry of Newcastle disease virus (NDV), a representative member of the paramyxovirus family, into multiple types of cells has been recently reported. Herein, we demonstrate the binding of NDV to induce ganglioside-activated Src signaling, which is responsible for the endocytic entry of NDV through caveolae-mediated endocytosis. This process involved Src-dependent activation of the caveolae-associated Cav1 and Dyn2, as well as specific Rho GTPase and downstream effectors, thereby orchestrating the endocytic entry process of NDV. Our findings uncover a novel molecular mechanism of endocytic entry of NDV into host cells and provide novel insight into paramyxovirus mechanisms of entry.


Subject(s)
Macrophages , Newcastle Disease , Newcastle disease virus , Signal Transduction , Virus Internalization , Animals , Endocytosis , Gangliosides/metabolism , Macrophages/metabolism , Macrophages/virology , Newcastle Disease/virology , Newcastle disease virus/physiology , rho GTP-Binding Proteins/metabolism
7.
J Virol ; 97(5): e0032423, 2023 05 31.
Article in English | MEDLINE | ID: mdl-37042750

ABSTRACT

In ovo vaccination is an attractive immunization approach for chickens. However, most live Newcastle disease virus (NDV) vaccine strains used safely after hatching are unsafe as in ovo vaccines due to their high pathogenicity for chicken embryos. The mechanism for viral pathogenicity in chicken embryos is poorly understood. Our previous studies reported that NDV strain TS09-C was a safe in ovo vaccine, and the F protein cleavage site (FCS) containing three basic amino acids (3B-FCS) was the crucial determinant of the attenuation of TS09-C in chicken embryos. Here, five trypsin-like proteases that activated NDV in chicken embryos were identified. The F protein with 3B-FCS was sensitive to the proteases Tmprss4, Tmprss9, and F7, was present in fewer tissue cells of chicken embryos, which limited the viral tropism, and was responsible for the attenuation of NDV with 3B-FCS, while the F protein with FCS containing two basic amino acids could be cleaved not only by Tmprss4, Tmprss9, and F7 but also by Prss23 and Cfd, was present in most tissue cells, and thereby was responsible for broad tissue tropism and high pathogenicity of virus in chicken embryos. Furthermore, when mixed with the protease inhibitors aprotinin and camostat, NDV with 2B-FCS exhibited greatly weakened pathogenicity in chicken embryos. Thus, our results extend the understanding of the molecular mechanism of NDV pathogenicity in chicken embryos and provide a novel molecular target for the rational design of in ovo vaccines, ensuring uniform and effective vaccine delivery and earlier induction of immune protection by the time of hatching. IMPORTANCE As an attractive immunization approach for chickens, in ovo vaccination can induce a considerable degree of protection by the time of hatching, provide support in closing the window in which birds are susceptible to infection, facilitate fast and uniform vaccine delivery, and reduce labor costs by the use of mechanized injectors. The commercial live Newcastle disease virus (NDV) vaccine strains are not safe for in ovo vaccination and cause the death of chicken embryos. The mechanism for viral pathogenicity in chicken embryos is poorly understood. In the present study, we identified five trypsin-like proteases that activate NDV in chicken embryos and elucidated their roles in the tissue tropism and pathogenicity of NDV used as in ovo vaccine. Finally, we revealed the molecular basis for the pathogenicity of NDV in chicken embryos and provided a novel strategy for the rational design of in ovo ND vaccines.


Subject(s)
Newcastle Disease , Peptide Hydrolases , Poultry Diseases , Viral Vaccines , Animals , Chick Embryo , Antibodies, Viral , Chickens , Newcastle Disease/immunology , Newcastle Disease/virology , Newcastle disease virus/physiology , Peptide Hydrolases/metabolism , Poultry Diseases/immunology , Poultry Diseases/virology , Vaccines, Attenuated , Viral Vaccines/administration & dosage , Virulence
8.
J Virol ; 97(3): e0001623, 2023 03 30.
Article in English | MEDLINE | ID: mdl-36794935

ABSTRACT

Viruses require host cell metabolic reprogramming to satisfy their replication demands; however, the mechanism by which the Newcastle disease virus (NDV) remodels nucleotide metabolism to support self-replication remains unknown. In this study, we demonstrate that NDV relies on the oxidative pentose phosphate pathway (oxPPP) and the folate-mediated one-carbon metabolic pathway to support replication. In concert with [1,2-13C2] glucose metabolic flow, NDV used oxPPP to promote pentose phosphate synthesis and to increase antioxidant NADPH production. Metabolic flux experiments using [2,3,3-2H] serine revealed that NDV increased one-carbon (1C) unit synthesis flux through the mitochondrial 1C pathway. Interestingly, methylenetetrahydrofolate dehydrogenase (MTHFD2) was upregulated as a compensatory mechanism for insufficient serine availability. Unexpectedly, direct knockdown of enzymes in the one-carbon metabolic pathway, except for cytosolic MTHFD1, significantly inhibited NDV replication. Specific complementation rescue experiments on small interfering RNA (siRNA)-mediated knockdown further revealed that only a knockdown of MTHFD2 strongly restrained NDV replication and was rescued by formate and extracellular nucleotides. These findings indicated that NDV replication relies on MTHFD2 to maintain nucleotide availability. Notably, nuclear MTHFD2 expression was increased during NDV infection and could represent a pathway by which NDV steals nucleotides from the nucleus. Collectively, these data reveal that NDV replication is regulated by the c-Myc-mediated 1C metabolic pathway and that the mechanism of nucleotide synthesis for viral replication is regulated by MTHFD2. IMPORTANCE Newcastle disease virus (NDV) is a dominant vector for vaccine and gene therapy that accommodates foreign genes well but can only infect mammalian cells that have undergone cancerous transformation. Understanding the remodeling of nucleotide metabolic pathways in host cells by NDV proliferation provides a new perspective for the precise use of NDV as a vector or in antiviral research. In this study, we demonstrated that NDV replication is strictly dependent on pathways involved in redox homeostasis in the nucleotide synthesis pathway, including the oxPPP and the mitochondrial one-carbon pathway. Further investigation revealed the potential involvement of NDV replication-dependent nucleotide availability in promoting MTHFD2 nuclear localization. Our findings highlight the differential dependence of NDV on enzymes for one-carbon metabolism, and the unique mechanism of action of MTHFD2 in viral replication, thereby providing a novel target for antiviral or oncolytic virus therapy.


Subject(s)
Methylenetetrahydrofolate Dehydrogenase (NADP) , Newcastle Disease , Newcastle disease virus , Virus Replication , Animals , Methylenetetrahydrofolate Dehydrogenase (NADP)/genetics , Methylenetetrahydrofolate Dehydrogenase (NADP)/metabolism , Newcastle Disease/enzymology , Newcastle Disease/physiopathology , Newcastle Disease/virology , Newcastle disease virus/genetics , Newcastle disease virus/metabolism , Nucleotides/metabolism , Serine/metabolism , Virus Replication/genetics , Cell Line , A549 Cells , Humans , Mesocricetus , Gene Knockdown Techniques , Protein Transport/genetics , Mitochondria/enzymology , Up-Regulation/physiology
9.
PLoS One ; 17(2): e0264028, 2022.
Article in English | MEDLINE | ID: mdl-35171961

ABSTRACT

Newcastle disease (ND), caused by Newcastle disease virus (NDV), is a contagious disease that affects a variety of domestic and wild avian species. Though ND is vaccine-preventable, it is a persistent threat to poultry industry across the globe. The disease represents a leading cause of morbidity and mortality in chickens. To better understand the epidemiology of NDV among commercial and backyard chickens of Odisha, where chicken farming is being prioritized to assist with poverty alleviation, a cross-sectional study was conducted in two distinct seasons during 2018. Choanal swabs (n = 1361) from live birds (commercial layers, broilers, and backyard chicken) and tracheal tissues from dead birds (n = 10) were collected and tested by real-time reverse transcription polymerase chain reaction (RT-PCR) for the presence of matrix (M) and fusion (F) genes of NDV. Risk factors at the flock and individual bird levels (health status, ND vaccination status, geographical zone, management system, and housing) were assessed using multivariable logistic regression analyses. Of the 1371 samples tested, 160 were positive for M gene amplification indicating an overall apparent prevalence of 11.7% (95% CI 10.1-13.5%). Circulation of virulent NDV strains was also evident with apparent prevalence of 8.1% (13/160; 95% CI: 4.8-13.4%). In addition, commercial birds had significantly higher odds (75%) of being infected with NDV as compared to backyard poultry (p = 0.01). This study helps fill a knowledge gap in the prevalence and distribution of NDV in apparently healthy birds in eastern India, and provides a framework for future longitudinal research of NDV risk and mitigation in targeted geographies-a step forward for effective control of ND in Odisha.


Subject(s)
Antibodies, Viral/blood , Newcastle Disease/epidemiology , Newcastle disease virus/isolation & purification , Poultry Diseases/epidemiology , Viral Proteins/genetics , Animals , Antibodies, Viral/immunology , Chickens , Cross-Sectional Studies , Female , India/epidemiology , Male , Newcastle Disease/genetics , Newcastle Disease/immunology , Newcastle Disease/virology , Newcastle disease virus/genetics , Newcastle disease virus/immunology , Poultry Diseases/genetics , Poultry Diseases/immunology , Poultry Diseases/virology , Risk Factors
10.
J Virol ; 96(2): e0162921, 2022 01 26.
Article in English | MEDLINE | ID: mdl-34705566

ABSTRACT

The Newcastle disease virus (NDV) matrix (M) protein is the pivotal element for viral assembly, budding, and proliferation. It traffics through the cellular nucleus but performs its primary function in the cytoplasm. To investigate the biological importance of M protein nuclear-cytoplasmic trafficking and the mechanism involved, the regulatory motif nuclear export signal (NES) and nuclear localization signal (NLS) were analyzed. Here, two types of combined NLSs and NESs were identified within the NDV-M protein. The Herts/33-type M protein was found to mediate efficient nuclear export and stable virus-like particle (VLP) release, while the LaSota-type M protein was retained mostly in the nuclei and showed retarded VLP production. Two critical residues, namely, 247 and 263, within the motif were identified and associated with nuclear export efficiency. We identified, for the first time, residue 247 as an important monoubiquitination site, of which its modification regulates the nuclear-cytoplasmic trafficking of NDV-M. Subsequently, mutant LaSota strains were rescued via reverse genetics, which contained either single or double amino acid substitutions that were similar to the M of Herts/33. The rescued LaSota (rLaSota) strains rLaSota-R247K, -S263R, and -double mutation (DM) showed about 2-fold higher hemagglutination (HA) titers and 10-fold higher 50% egg infective dose (EID50) titers than wild-type (wt) rLaSota. Furthermore, the mean death time (MDT) and intracerebral pathogenicity index (ICPI) values of those recombinant viruses were slightly higher than those of wt rLaSota probably due to their higher proliferation rates. Our findings contribute to a better understanding of the molecular mechanism of the replication and pathogenicity of NDV and even those of all other paramyxoviruses. This information is beneficial for the development of vaccines and therapies for paramyxoviruses. IMPORTANCE Newcastle disease virus (NDV) is a pathogen that is lethal to birds and causes heavy losses in the poultry industry worldwide. The World Organization for Animal Health (OIE) ranked Newcastle disease (ND) as the third most significant poultry disease and the eighth most important wildlife disease in the World Livestock Disease Atlas in 2011. The matrix (M) protein of NDV is very important for viral assembly and maturation. It is interesting that M proteins enter the cellular nucleus before performing their primary function in the cytoplasm. We found that NDV-M has a combined nuclear import and export signal. The ubiquitin modification of a lysine residue within this signal is critical for quick, efficient nuclear export and subsequent viral production. Our findings shed new light on viral replication and open up new possibilities for therapeutics against NDV and other paramyxoviruses; furthermore, we demonstrate a novel approach for improving paramyxovirus vaccines.


Subject(s)
Cell Nucleus/metabolism , Newcastle disease virus/physiology , Newcastle disease virus/pathogenicity , Ubiquitination , Viral Matrix Proteins/metabolism , Virus Replication , Animals , Chickens , Cytoplasm/metabolism , Lysine , Models, Molecular , Mutation , Newcastle Disease/metabolism , Newcastle Disease/virology , Newcastle disease virus/metabolism , Nuclear Export Signals , Nuclear Localization Signals , Viral Matrix Proteins/chemistry , Viral Matrix Proteins/genetics , Virulence , Virus Release
11.
Vet Res ; 52(1): 147, 2021 Dec 20.
Article in English | MEDLINE | ID: mdl-34930432

ABSTRACT

The fusion (F) and haemagglutinin-neuraminidase (HN) proteins of Newcastle disease virus (NDV) are viral entry proteins and are recognized as the major virulence determinants. Previously, a lentogenic NDV virus (CE16) was derived from a mesogenic strain (CI10) through sequential passages in chick embryos. Whole-genome sequence analysis revealed that the two homologous strains shared the same F protein but differed in HN with two amino acid (aa) substitutions (A215G and T430A). To elucidate the molecular reasons for virulence attenuation, two original plasmids (HN-CI10 and HN-CE16) and two single-point mutants (G215A and A430T) reverse-mutated from HN-CE16 were constructed to analyse the known biological functions of HN. The results showed that the A430T substitution significantly weakened the haemadsorption (HAd) activity, increased the neuraminidase (NA) activity, improved the fusion-promoting activity, and enhanced the cleavage-promoting activity of HN-CE16. However, G215A failed to induce obvious functional changes. Therefore, the aa residue HN430 may play a key role in determining virulence. To test this hypothesis, further studies on A430T were conducted through reverse genetics using an infectious cDNA clone. At the viral level, the A430T-mutated virus showed dramatic promotion of viral plaque formation, propagation, and pathogenicity in vitro and in vivo. This study demonstrates a new virulence site associated with HN protein functions, viral propagation, and pathogenicity. All these findings could lay a foundation for illuminating the molecular mechanism of NDV virulence.


Subject(s)
Amino Acids , HN Protein , Newcastle Disease , Newcastle disease virus , Virulence , Amino Acids/genetics , Animals , Chick Embryo , Chickens , HN Protein/genetics , Mutation , Newcastle Disease/virology , Newcastle disease virus/genetics , Newcastle disease virus/pathogenicity , Virulence/genetics
12.
Viruses ; 13(12)2021 12 02.
Article in English | MEDLINE | ID: mdl-34960678

ABSTRACT

The chicken is a model animal for the study of evolution, immunity and development. In addition to their use as a model organism, chickens also represent an important agricultural product. Pathogen invasion has already been shown to modulate the expression of hundreds of genes, but the role of alternative splicing in avian virus infection remains unclear. We used RNA-seq data to analyze virus-induced changes in the alternative splicing of Gallus gallus, and found that a large number of alternative splicing events were induced by virus infection both in vivo and in vitro. Virus-responsive alternative splicing events preferentially occurred in genes involved in metabolism and transport. Many of the alternatively spliced transcripts were also expressed from genes with a function relating to splicing or immune response, suggesting a potential impact of virus infection on pre-mRNA splicing and immune gene regulation. Moreover, exon skipping was the most frequent AS event in chickens during virus infection. This is the first report describing a genome-wide analysis of alternative splicing in chicken and contributes to the genomic resources available for studying host-virus interaction in this species. Our analysis fills an important knowledge gap in understanding the extent of genome-wide alternative splicing dynamics occurring during avian virus infection and provides the impetus for the further exploration of AS in chicken defense signaling and homeostasis.


Subject(s)
Alternative Splicing , Chickens/genetics , Chickens/virology , Host Microbial Interactions , Poultry Diseases/genetics , Virus Diseases/veterinary , 3' Untranslated Regions , Animals , Cells, Cultured , Newcastle Disease/genetics , Newcastle Disease/virology , Newcastle disease virus/genetics , Newcastle disease virus/physiology , Polyadenylation , Poultry Diseases/virology , RNA Splicing Factors/genetics , RNA-Seq , Spliceosomes/genetics , Transcriptome , Virus Diseases/virology
13.
Viruses ; 13(12)2021 12 06.
Article in English | MEDLINE | ID: mdl-34960715

ABSTRACT

Newcastle disease virus (NDV) can infect over 250 bird species with variable pathogenicity; it can also infect humans in rare cases. The present study investigated an outbreak in feral pigeons in São Paulo city, Brazil, in 2019. Affected birds displayed neurological signs, and hemorrhages were observed in different tissues. Histopathology changes with infiltration of mononuclear inflammatory cells were also found in the brain, kidney, proventriculus, heart, and spleen. NDV staining was detected by immunohistochemistry. Twenty-seven out of thirty-four tested samples (swabs and tissues) were positive for Newcastle disease virus by RT-qPCR test, targeting the M gene. One isolate, obtained from a pool of positive swab samples, was characterized by the intracerebral pathogenicity index (ICPI) and the hemagglutination inhibition (HI) tests. This isolate had an ICPI of 0.99, confirming a virulent NDV strain. The monoclonal antibody 617/161, which recognizes a distinct epitope in pigeon NDV strains, inhibited the isolate with an HI titer of 512. A complete genome of NDV was obtained using next-generation sequencing. Phylogenetic analysis based on the complete CDS F gene grouped the detected isolate with other viruses from subgenotype VI.2.1.2, class II, including one previously reported in Southern Brazil in 2014. This study reports a comprehensive characterization of the subgenotype VI.2.1.2, which seems to have been circulating in Brazilian urban areas since 2014. Due to the zoonotic risk of NDV, virus surveillance in feral pigeons should also be systematically performed in urban areas.


Subject(s)
Columbidae , Disease Outbreaks/veterinary , Newcastle Disease/epidemiology , Newcastle disease virus/genetics , Animals , Brazil/epidemiology , Genome, Viral , Genotype , High-Throughput Nucleotide Sequencing , Newcastle Disease/pathology , Newcastle Disease/virology , Newcastle disease virus/classification , Newcastle disease virus/isolation & purification , Newcastle disease virus/pathogenicity , Phylogeny , Virulence , Whole Genome Sequencing
14.
Microbiol Spectr ; 9(3): e0217321, 2021 12 22.
Article in English | MEDLINE | ID: mdl-34937182

ABSTRACT

Newcastle disease virus (NDV) fusion protein mediates the virus's fusion activity, which is a determinant of NDV pathogenicity. The ectodomain of the F protein is known to have a major impact on fusion, and several reports have also indicated the role of the cytoplasmic tail (CT) in viral entry, F protein cleavage, and fusion, which are regulated by specific motifs. We found a highly conserved tyrosine residue located in the YLMY motif. The tyrosine residues at positions 524 and 527 have different roles in viral replication and pathogenicity and are associated with F protein intracellular processing. Tyrosine residues mutants affect the transportation of the F protein from the endoplasmic reticulum to the Golgi apparatus, resulting in different cleavage efficiencies. F protein is subsequently transported to the cell surface where it participates in viral budding, a process closely related to the distinctions in pathogenicity caused by the tyrosine residues. In addition, the different mutations all led to a hypofusogenic phenotype. We believe that the highly conserved tyrosine residue of the YLMY motif uses a similar mechanism to the tyrosine-based motif (YXXΦ) to regulate F protein transport and thus affect viral replication and pathogenicity. IMPORTANCE The amino-terminal cytoplasmic domains of paramyxovirus fusion glycoproteins include trafficking signals that influence protein processing and cell surface expression. This study clarified that tyrosine residues at different positions in the YLMY motif in the cytoplasmic region of the F protein regulate F protein transportation, thereby affecting viral replication and pathogenicity. This study has increased our understanding of how NDV virulence is mediated by the F protein and provides a fresh perspective on the role of CT in the virus's life cycle. This information may be useful in the development of NDV as an effective vaccine vector and oncolytic agent.


Subject(s)
Newcastle Disease/virology , Newcastle disease virus/physiology , Newcastle disease virus/pathogenicity , Poultry Diseases/virology , Viral Fusion Proteins/chemistry , Viral Fusion Proteins/metabolism , Virus Release , Amino Acid Motifs , Amino Acid Sequence , Animals , Cell Line , Chickens , Gene Expression Regulation, Viral , Newcastle disease virus/chemistry , Newcastle disease virus/genetics , Sequence Alignment , Tyrosine/genetics , Tyrosine/metabolism , Viral Fusion Proteins/genetics , Virulence , Virus Replication
15.
Mol Biol Rep ; 48(11): 7281-7291, 2021 Nov.
Article in English | MEDLINE | ID: mdl-34623594

ABSTRACT

BACKGROUND: Newcastle disease, is one of the most important diseases of the poultry industry, has many economic losses. The aim of this study was to isolate and determine the molecular identity of Newcastle disease virus in 40 broiler flocks with respiratory symptoms in four provinces of Iran. METHODS AND RESULTS: Samples of farms with respiratory symptoms were collected from different regions of Isfahan, East Azerbaijan, Golestan, and Khuzestan provinces and inoculated into 9-day-old embryonated chicken eggs. The Reverse-transcription polymerase chain reaction (RT-PCR) was performed to detect the Newcastle disease virus in allantoic fluid. Of the 40 flocks, the virus was isolated and identified in 16 flocks. The PCR products of 16 isolates were sequenced, and a phylogenetic tree was drawn. Accordingly, six isolates were in genotype II and ten isolates were in subgenotype VII.1.1 (VIId) of class II. CONCLUSION: Both genotypes were present in all four provinces. The isolates of Khuzestan province showed the greatest diversity compared to the other three provinces. The similarity of isolates belonging to genotype II in this study was observed with Pakistan, China, and Nigeria, and other isolates were similar to previous isolates in Iran. Also, the highest amino acid sequence in the F-protein cleavage site was 112RRQKR/F117 for VII.1.1 (VIId) genotype isolates and 112GRQGR/L117 for II genotype isolates.


Subject(s)
Newcastle Disease/virology , Newcastle disease virus/isolation & purification , RNA, Viral , Animals , Chick Embryo , Chickens , Iran , Newcastle disease virus/genetics , Phylogeny , Poultry Diseases/virology , Sequence Analysis, RNA
16.
Viruses ; 13(10)2021 10 02.
Article in English | MEDLINE | ID: mdl-34696415

ABSTRACT

Newcastle disease virus (NDV) strain R2B, with an altered fusion protein cleavage site, was used as a viral vector to deliver the immunogenic genes VP2 and VP1 of chicken infectious anaemia virus (CIAV) to generate a bivalent vaccine candidate against these diseases in chickens. The immunogenic genes of CIAV were expressed as a single transcriptional unit from the NDV backbone and the two CIA viral proteins were obtained as separate entities using a self-cleaving foot-and-mouth disease virus 2A protease sequence between them. The recombinant virus (rR2B-FPCS-CAV) had similar growth kinetics as that of the parent recombinant virus (rR2B-FPCS) in vitro with similar pathogenicity characteristics. The bivalent vaccine candidate when given in specific pathogen-free chickens as primary and booster doses was able to elicit robust humoral and cell-mediated immune (CMI) responses obtained in a vaccination study that was conducted over a period of 15 weeks. In an NDV and CIAV ELISA trial, there was a significant difference in the titres of antibody between vaccinated and control groups which showed slight reduction in antibody titre by 56 days of age. Hence, a second booster was administered and the antibody titres were maintained until 84 days of age. Similar trends were noticed in CMI response carried out by lymphocyte transformation test, CD4+ and CD8+ response by flow cytometry analysis and response of real time PCR analysis of cytokine genes. Birds were challenged with virulent NDV and CIAV at 84 days and there was significant reduction in the NDV shed on the 2nd and 4th days post challenge in vaccinated birds as compared to unvaccinated controls. Haematological parameters comprising PCV, TLC, PLC and PHC were estimated in birds that were challenged with CIAV that indicated a significant reduction in the blood parameters of controls. Our findings support the development and assessment of a bivalent vaccine candidate against NDV and CIAV in chickens.


Subject(s)
Chicken anemia virus/immunology , Chickens/immunology , Newcastle disease virus/genetics , Animals , Antibodies, Viral/blood , Chicken anemia virus/pathogenicity , Chickens/virology , Genetic Vectors , Immunity/immunology , Immunity, Cellular , Newcastle Disease/virology , Newcastle disease virus/immunology , Newcastle disease virus/pathogenicity , Poultry Diseases/virology , Vaccination/methods , Viral Vaccines/immunology
17.
Sci Rep ; 11(1): 17570, 2021 09 02.
Article in English | MEDLINE | ID: mdl-34475461

ABSTRACT

Newcastle disease virus (NDV) has caused significant outbreaks in South-East Asia, particularly in Indonesia in recent years. Recently emerged genotype VII NDVs (NDV-GVII) have shifted their tropism from gastrointestinal/respiratory tropism to a lymphotropic virus, invading lymphoid organs including spleen and bursa of Fabricius to cause profound lymphoid depletion. In this study, we aimed to identify candidate genes and biological pathways that contribute to the disease caused by this velogenic NDV-GVII. A transcriptomic analysis based on RNA-Seq of spleen was performed in chickens challenged with NDV-GVII and a control group. In total, 6361 genes were differentially expressed that included 3506 up-regulated genes and 2855 down-regulated genes. Real-Time PCR of ten selected genes validated the RNA-Seq results as the correlation between them is 0.98. Functional and network analysis of Differentially Expressed Genes (DEGs) showed altered regulation of ElF2 signalling, mTOR signalling, proliferation of cells of the lymphoid system, signalling by Rho family GTPases and synaptogenesis signalling in spleen. We have also identified modified expression of IFIT5, PI3K, AGT and PLP1 genes in NDV-GVII infected chickens. Our findings in activation of autophagy-mediated cell death, lymphotropic and synaptogenesis signalling pathways provide new insights into the molecular pathogenesis of this newly emerged NDV-GVII.


Subject(s)
Avian Proteins/metabolism , Newcastle Disease/pathology , Newcastle disease virus/pathogenicity , Poultry Diseases/pathology , Spleen/pathology , Animals , Avian Proteins/genetics , Chickens , Indonesia , Newcastle Disease/genetics , Newcastle Disease/virology , Poultry Diseases/genetics , Poultry Diseases/virology , Spleen/metabolism , Spleen/virology , Transcriptome
18.
Avian Dis ; 65(1): 18-25, 2021 03.
Article in English | MEDLINE | ID: mdl-34339117

ABSTRACT

Severity of the tracheal histologic inflammatory response induced in broilers by ocular inoculation of two infectious bronchitis (IBV) and three Newcastle disease virus (NDV) commercial vaccines were evaluated. The vaccine was delivered by eye drop with a coarse spray to day-old chicks. The vaccines were given individually or in various combinations and were evaluated relative to nonvaccinated controls. Evaluations were performed on postvaccination (PV) days 7 and 14. Histologic endpoints included semiquantitative severity scoring of inflammatory components and quantitative morphometric determinations of inflammatory cell concentration, mucosal thickness, and percentage of ciliated mucosal surface. Strong positive correlations were observed between routine severity scoring and morphometric inflammatory parameters, whereas a negative correlation was present between inflammation severity and the percentage of mucosal ciliation. Variable, sometimes extensive, and often statistically significant differences in inflammatory responses were observed between the various vaccines. One IBV Massachusetts strain vaccine (IBV-A) produced the greatest overall inflammatory response when given alone or in combination with the NDV vaccines. Enhancement of tracheitis was seen on PV day 14 by covaccination of IBV-A with the NDV vaccines, but not by covaccination of another IBV Massachusetts strain vaccine (IBV-B) with NDV. Reduction in cilia percentage was observed for all vaccine groups relative to controls on PV day 7. However, although reactive cilia regeneration occurred on PV day 14 for most vaccine groups, a cilia regenerative response was not apparent for individual or NDV combination vaccination for IBV-A. The study also demonstrates that substantial microscopic trachea pathology may be present in vaccinated birds not exhibiting apparent clinical respiratory signs.


Artículo regular­Métodos de calificación de lesiones histológicas e histomorfométricos para medir las reacciones a las vacunas en la tráquea de pollos de engorde. Se evaluó la gravedad de la respuesta inflamatoria histológica traqueal en pollos de engorde inducida mediante la inoculación ocular de dos vacunas comerciales contra la bronquitis infecciosa (IBV) y tres vacunas del virus de la enfermedad de Newcastle (NDV). Las vacunas se administraron mediante aplicación ocular a pollitos de un día de edad. Las vacunas se administraron individualmente o en varias combinaciones y se evaluaron en relación con los controles no vacunados. Las evaluaciones se realizaron en los días 7 y 14 después de la vacunación (PV). Los criterios de valoración histológicos incluyeron puntuación semicuantitativa de la severidad de los componentes inflamatorios y determinaciones morfométricas cuantitativas de la concentración de células inflamatorias, el grosor de la mucosa y el porcentaje de superficie de la mucosa con cilios. Se observaron fuertes correlaciones positivas entre la puntuación rutinaria de severidad y los parámetros morfométricos inflamatorios, mientras que se observó una correlación negativa entre la severidad de la inflamación y el porcentaje de la superficie con cilios en la mucosa. Se observaron diferencias variables, a veces extensas y a menudo estadísticamente significativas en las respuestas inflamatorias entre las diversas vacunas. Una vacuna de la cepa de Massachusetts del virus de la bronquitis infecciosa (IBV-A) produjo la mayor respuesta inflamatoria general cuando se administró sola o en combinación con las vacunas de Newcastle. Se observó un aumento de la traqueítis en el día 14 después de la vacunación mediante la vacunación simultánea de la vacuna de bronquitis infecciosa A con las vacunas de Newcastle, pero no mediante la vacunación simultánea de la otra vacuna de la cepa Massachusetts (IBV-B) con Newcastle. Se observó una reducción en el porcentaje de los cilios para todos los grupos vacunados en comparación con los controles en el día siete después de la vacunación. Sin embargo, aunque la regeneración de cilios reactivos ocurrió en el día 14 después de la vacunación para la mayoría de los grupos vacunados, no fue evidente una respuesta de regeneración de cilios para la vacunación individual o combinada de Newcastle con la vacuna de bronquitis infecciosa Massachusetts A. El estudio también demuestra que puede estar presente una patología microscópica sustancial de la tráquea en aves vacunadas que no presentan signos respiratorios clínicos aparentes.


Subject(s)
Chickens , Coronavirus Infections/veterinary , Infectious bronchitis virus/immunology , Newcastle Disease/prevention & control , Newcastle disease virus/immunology , Poultry Diseases/prevention & control , Vaccination/veterinary , Viral Vaccines/adverse effects , Animals , Coronavirus Infections/prevention & control , Coronavirus Infections/virology , Newcastle Disease/virology , Poultry Diseases/virology , Trachea/pathology , Trachea/virology , Vaccination/adverse effects , Vaccines, Combined/adverse effects
19.
Vet Microbiol ; 261: 109181, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34399297

ABSTRACT

The V protein of Newcastle disease virus (NDV) has been shown to inhibit the secretion of interferon (IFN) during infection, which is responsible for the promotion of NDV pathogenicity. However, the ability of the V protein to suppress host innate immunity is not well understood. In this study, we explored the function of V protein and its relationship with virulence by generating V protein-inserted recombinant (r) NDVs. Using rNDVs as a model, we examined the efficiency of infection, IFN responses, and apoptosis of host cells during infection. We found that viral propagation occurred smoothly when V protein from lentogenic NDV is inserted instead of the V protein from the velogenic strain. The infection of lentogenic V protein-inserted rNDV induced less expression of IFNs and downstream antiviral proteins via efficient degradation of p-STAT1 and MDA5. Moreover, velogenic V protein triggered a higher apoptosis rate during infection thereby restricting the replication of NDV. Conversely, lentogenic V protein inhibits IFN responses efficiently and induces less apoptosis compared to the velogenic strain. Our findings provide a novel understanding of the role of V protein in NDV pathogenicity.


Subject(s)
Newcastle Disease/immunology , Newcastle Disease/virology , Newcastle disease virus/genetics , Newcastle disease virus/pathogenicity , Poultry Diseases/immunology , Poultry Diseases/virology , Viral Proteins , Animals , Apoptosis , Gene Expression Regulation/immunology , Host Microbial Interactions/immunology , Interferons/genetics , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Viral Proteins/genetics , Viral Proteins/metabolism
20.
PLoS One ; 16(7): e0252045, 2021.
Article in English | MEDLINE | ID: mdl-34197467

ABSTRACT

Among livestock species, poultry and small ruminants are of particular importance to rural women in low- and middle-income countries, as means to generate income, provide nutritious food for the family, accumulate wealth, and confer social status. Newcastle disease (ND) and Peste des Petits Ruminants (PPR) are widespread livestock diseases of poultry and small ruminants, respectively. While both diseases are vaccine preventable, numerous constraints limit the availability of and access to livestock vaccines, especially among the most vulnerable populations in developing countries. The literature on equity and effectiveness of livestock vaccine distribution systems has emphasized many of these constraints, however a gendered analysis and deeper understanding of the vaccine system remain insufficient. This paper applies a gendered and intersectional transformational approach, or GITA, to highlight how gender and other social factors affect the provision and utilization of vaccines for ND and PPR diseases in the region of Kaffrine, Senegal. We first articulate and describe the vaccine value chains (VVCs) for these diseases in Kaffrine, and then analyze the gendered and intersectional dynamics at different nodes of the VVCs, including actors at the national level, through the regional and district levels, down to providers of animal health at community level and the livestock keepers themselves. Our findings indicate that actors' various experiences are shaped and defined mainly by rigid gender norms, location and remoteness, and to a lesser degree by other social stratifications of age, ethnicity, and livelihood. Given the significant role that gender norms play in the livestock vaccine value chains, differences according to the livestock species, regulation of vaccine administration, and vaccine distribution systems emerge as highly relevant for understanding barriers that women specifically face within the livestock vaccination system.


Subject(s)
Gender Identity , Psychological Distance , Viral Vaccines/supply & distribution , Animals , Ethnicity , Female , Focus Groups , Humans , Interviews as Topic , Livestock/immunology , Male , Newcastle Disease/pathology , Newcastle Disease/prevention & control , Newcastle Disease/virology , Peste-des-Petits-Ruminants/pathology , Peste-des-Petits-Ruminants/prevention & control , Peste-des-Petits-Ruminants/virology , Poultry , Ruminants , Senegal , Vaccination/veterinary , Viral Vaccines/administration & dosage , Women/psychology
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