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1.
PLoS One ; 19(5): e0303371, 2024.
Article in English | MEDLINE | ID: mdl-38728352

ABSTRACT

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.


Subject(s)
Chickens , Herpesvirus 2, Gallid , Marek Disease , Oncogene Proteins, Viral , Phylogeny , Animals , Chickens/virology , Taiwan/epidemiology , Marek Disease/virology , Marek Disease/prevention & control , Herpesvirus 2, Gallid/genetics , Herpesvirus 2, Gallid/pathogenicity , Virulence/genetics , Oncogene Proteins, Viral/genetics , Poultry Diseases/virology , Poultry Diseases/epidemiology , Poultry Diseases/prevention & control , Marek Disease Vaccines/genetics , Marek Disease Vaccines/immunology , Vaccination/veterinary
2.
Viruses ; 16(5)2024 05 15.
Article in English | MEDLINE | ID: mdl-38793663

ABSTRACT

Marek's disease (MD), caused by gallid alphaherpesvirus 2 (GaAHV2) or Marek's disease herpesvirus (MDV), is a devastating disease in chickens characterized by the development of lymphomas throughout the body. Vaccine strains used against MD include gallid alphaherpesvirus 3 (GaAHV3), a non-oncogenic chicken alphaherpesvirus homologous to MDV, and homologous meleagrid alphaherpesvirus 1 (MeAHV1) or turkey herpesvirus (HVT). Previous work has shown most of the MDV gC produced during in vitro passage is secreted into the media of infected cells although the predicted protein contains a transmembrane domain. We formerly identified two alternatively spliced gC mRNAs that are secreted during MDV replication in vitro, termed gC104 and gC145 based on the size of the intron removed for each UL44 (gC) transcript. Since gC is conserved within the Alphaherpesvirinae subfamily, we hypothesized GaAHV3 (strain 301B/1) and HVT also secrete gC due to mRNA splicing. To address this, we collected media from 301B/1- and HVT-infected cell cultures and used Western blot analyses and determined that both 301B/1 and HVT produced secreted gC. Next, we extracted RNAs from 301B/1- and HVT-infected cell cultures and chicken feather follicle epithelial (FFE) skin cells. RT-PCR analyses confirmed one splicing variant for 301B/1 gC (gC104) and two variants for HVT gC (gC104 and gC145). Interestingly, the splicing between all three viruses was remarkably conserved. Further analysis of predicted and validated mRNA splicing donor, branch point (BP), and acceptor sites suggested single nucleotide polymorphisms (SNPs) within the 301B/1 UL44 transcript sequence resulted in no gC145 being produced. However, modification of the 301B/1 gC145 donor, BP, and acceptor sites to the MDV UL44 sequences did not result in gC145 mRNA splice variant, suggesting mRNA splicing is more complex than originally hypothesized. In all, our results show that mRNA splicing of avian herpesviruses is conserved and this information may be important in developing the next generation of MD vaccines or therapies to block transmission.


Subject(s)
Chickens , RNA Splicing , Viral Envelope Proteins , Animals , Chickens/virology , Viral Envelope Proteins/genetics , Viral Envelope Proteins/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Marek Disease/virology , Mardivirus/genetics , Mardivirus/physiology , Viral Proteins/genetics , Viral Proteins/metabolism , Herpesvirus 2, Gallid/genetics , Alternative Splicing , Antigens, Viral
3.
PLoS Pathog ; 20(5): e1012261, 2024 May.
Article in English | MEDLINE | ID: mdl-38805555

ABSTRACT

Marek's disease virus (MDV) vaccines were the first vaccines that protected against cancer. The avirulent turkey herpesvirus (HVT) was widely employed and protected billions of chickens from a deadly MDV infection. It is also among the most common vaccine vectors providing protection against a plethora of pathogens. HVT establishes latency in T-cells, allowing the vaccine virus to persist in the host for life. Intriguingly, the HVT genome contains telomeric repeat arrays (TMRs) at both ends; however, their role in the HVT life cycle remains elusive. We have previously shown that similar TMRs in the MDV genome facilitate its integration into host telomeres, which ensures efficient maintenance of the virus genome during latency and tumorigenesis. In this study, we investigated the role of the TMRs in HVT genome integration, latency, and reactivation in vitro and in vivo. Additionally, we examined HVT infection of feather follicles. We generated an HVT mutant lacking both TMRs (vΔTMR) that efficiently replicated in cell culture. We could demonstrate that wild type HVT integrates at the ends of chromosomes containing the telomeres in T-cells, while integration was severely impaired in the absence of the TMRs. To assess the role of TMRs in vivo, we infected one-day-old chickens with HVT or vΔTMR. vΔTMR loads were significantly reduced in the blood and hardly any virus was transported to the feather follicle epithelium where the virus is commonly shed. Strikingly, latency in the spleen and reactivation of the virus were severely impaired in the absence of the TMRs, indicating that the TMRs are crucial for the establishment of latency and reactivation of HVT. Our findings revealed that the TMRs facilitate integration of the HVT genome into host chromosomes, which ensures efficient persistence in the host, reactivation, and transport of the virus to the skin.


Subject(s)
Chickens , Marek Disease , Telomere , Virus Integration , Virus Latency , Animals , Chickens/virology , Telomere/genetics , Telomere/virology , Marek Disease/virology , Marek Disease/immunology , Marek Disease/prevention & control , Genetic Vectors , Herpesvirus 1, Meleagrid/genetics , Herpesvirus 1, Meleagrid/immunology , Marek Disease Vaccines/immunology , Marek Disease Vaccines/genetics , Genome, Viral , Herpesvirus 2, Gallid/genetics , Herpesvirus 2, Gallid/immunology , Repetitive Sequences, Nucleic Acid , Poultry Diseases/virology , Poultry Diseases/immunology , Poultry Diseases/prevention & control
4.
Poult Sci ; 103(6): 103722, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38626691

ABSTRACT

The highly contagious, immunosuppressive, and cancer-causing Marek's disease virus (MDV) infects chickens. The financial costs of Marek's disease (MD) are significant for the chicken industry. In this study, a total of 180 samples from chicken farms suspected to be MDV-infected were collected. The chickens were sampled during the period between the months of October 2016 and February 2018 at Dakahlia and Damietta Governorates, Egypt. A total of 36 pooled samples were created. The prepared samples were inoculated into embryonated chicken eggs (ECEs). Indirect fluorescent antibody technique (IFAT) and ICP4 gene-based polymerase chain reaction (PCR) were used for MDV identification. For the genetic characterization of the identified virus, The ICP4 gene sequence was identified and compared with the sequences available from various regions of the world. Furthermore, the genomes of all detected MDVs were screened for the long terminal repeat (LTR) region of reticuloendotheliosis (REV) in their genomes. The results showed that 31 out of 36 pooled samples (86.1%) inoculated into ECEs displayed the characteristic pock lesions. By using IFAT and PCR to identify MDV in ECEs, positive results were found in 27 samples (75%). The Egyptian virus is thought to be genetically closely related to MDVs circulating in Ethiopia, China, and India. REV-LTR was amplified from 6 out of 27 field isolates genomes (22.2 %) while MDV vaccine strains were free from REV-LTR insertion. The integrated REV-LTRs depicted a close genetic relationship with those integrated in fowl poxvirus (FWPV) circulating in Egypt as well as those integrated in FWPVs and MDVs from China, USA, South Africa, and Australia. To the best of our knowledge, this investigation represents the first identification and characterization of REV-LTR insertions in Egyptian MDV field isolates. Given the findings above, additional research in the future seems crucial to determine how the REV-LTR insertions affect MDV pathogenesis, virulence, and insufficient vaccination protection.


Subject(s)
Chickens , Herpesvirus 2, Gallid , Marek Disease , Poultry Diseases , Animals , Marek Disease/virology , Marek Disease/epidemiology , Chickens/virology , Egypt/epidemiology , Poultry Diseases/virology , Poultry Diseases/epidemiology , Herpesvirus 2, Gallid/genetics , Herpesvirus 2, Gallid/isolation & purification , Terminal Repeat Sequences , Reticuloendotheliosis virus/genetics , Reticuloendotheliosis virus/isolation & purification , Virus Integration , Genome, Viral
5.
Science ; 382(6676): 1245-1246, 2023 12 15.
Article in English | MEDLINE | ID: mdl-38096277

ABSTRACT

Microbial genomes from ancient chickens uncover the drivers of pathogenicity.


Subject(s)
Chickens , Genome, Viral , Mardivirus , Marek Disease , Animals , Chickens/microbiology , Virulence/genetics , Marek Disease/history , Marek Disease/virology , Mardivirus/genetics , Mardivirus/pathogenicity
6.
Science ; 382(6676): 1276-1281, 2023 12 15.
Article in English | MEDLINE | ID: mdl-38096384

ABSTRACT

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.


Subject(s)
Chickens , Herpesvirus 2, Gallid , Marek Disease , Animals , Chickens/virology , Herpesvirus 2, Gallid/classification , Herpesvirus 2, Gallid/genetics , Herpesvirus 2, Gallid/pathogenicity , Lymphoma/virology , Marek Disease/history , Marek Disease/virology , Virulence/genetics , Phylogeny
7.
J Virol ; 97(10): e0071623, 2023 10 31.
Article in English | MEDLINE | ID: mdl-37737586

ABSTRACT

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.


Subject(s)
Chickens , Genome, Viral , Herpesvirus 2, Gallid , Homologous Recombination , Marek Disease , Telomere , Virus Integration , Animals , Chickens/virology , Genome, Viral/genetics , Herpesvirus 2, Gallid/genetics , Marek Disease/genetics , Marek Disease/virology , Poultry Diseases/genetics , Poultry Diseases/virology , Telomere/genetics , Viral Vaccines/immunology , Virus Activation , Virus Latency , Virus Integration/genetics
8.
BMC Genomics ; 23(1): 509, 2022 Jul 14.
Article in English | MEDLINE | ID: mdl-35836133

ABSTRACT

BACKGROUND: Duck plague virus (DPV), belonging to herpesviruses, is a linear double-stranded DNA virus. There are many reports about the outbreak of the duck plague in a variety of countries, which caused huge economic losses. Recently, increasing reports revealed that multiple long non-coding RNAs (lncRNAs) can possess great potential in the regulation of host antiviral immune response. Furthermore, it remains to be determined which specific molecular mechanisms are responsible for the DPV-host interaction in host immunity. Here, lncRNAs and mRNAs in DPV infected duck embryonic fibroblast (DEF) cells were identified by high-throughput RNA-sequencing (RNA-seq). And we predicted target genes of differentially expressed genes (DEGs) and formed a complex regulatory network depending on in-silico analysis and prediction. RESULT: RNA-seq analysis results showed that 2921 lncRNAs were found at 30 h post-infection (hpi). In our study, 218 DE lncRNAs and 2840 DE mRNAs were obtained in DEF after DPV infection. Among these DEGs and target genes, some have been authenticated as immune-related molecules, such as a Macrophage mannose receptor (MR), Anas platyrhynchos toll-like receptor 2 (TLR2), leukocyte differentiation antigen, interleukin family, and their related regulatory factors. Furthermore, according to the Kyoto Encyclopedia of Genes and Genomes (KEGG) and Gene Ontology (GO) enrichment analysis, we found that the target genes may have important effects on biological development, biosynthesis, signal transduction, cell biological regulation, and cell process. Also, we obtained, the potential targeting relationship existing in DEF cells between host lncRNAs and DPV-encoded miRNAs by software. CONCLUSIONS: This study revealed not only expression changes, but also the possible biological regulatory relationship of lncRNAs and mRNAs in DPV infected DEF cells. Together, these data and analyses provide additional insight into the role of lncRNAs and mRNAs in the host's immune response to DPV infection.


Subject(s)
Ducks/embryology , Fibroblasts/virology , Marek Disease/virology , Poultry Diseases/virology , RNA, Long Noncoding/metabolism , RNA, Messenger/metabolism , Animals , Disease Outbreaks/veterinary , Ducks/genetics , Ducks/virology , Fibroblasts/metabolism , Gene Expression Profiling , Herpesviridae Infections/metabolism , Mardivirus , Marek Disease/epidemiology , Marek Disease/immunology , Poultry Diseases/epidemiology , Poultry Diseases/immunology , RNA, Long Noncoding/analysis , RNA, Long Noncoding/genetics , RNA, Messenger/analysis , RNA, Messenger/genetics
9.
J Virol ; 96(9): e0032122, 2022 05 11.
Article in English | MEDLINE | ID: mdl-35412345

ABSTRACT

Circular RNAs (circRNAs) are a recently rediscovered class of functional noncoding RNAs that are involved in gene regulation and cancer development. Next-generation sequencing approaches identified circRNA fragments and sequences underlying circularization events in virus-induced cancers. In the present study, we performed viral circRNA expression analysis and full-length sequencing in infections with Marek's disease virus (MDV), which serves as a model for herpesvirus-induced tumorigenesis. We established inverse PCRs to identify and characterize circRNA expression from the repeat regions of the MDV genome during viral replication, latency, and reactivation. We identified a large variety of viral circRNAs through precise mapping of full-length circular transcripts and detected matching sequences with several viral genes. Hot spots of circRNA expression included the transcriptional unit of the major viral oncogene encoding the Meq protein and the latency-associated transcripts (LATs). Moreover, we performed genome-wide bioinformatic analyses to extract back-splice junctions from lymphoma-derived samples. Using this strategy, we found that circRNAs were abundantly expressed in vivo from the same key virulence genes. Strikingly, the observed back-splice junctions do not follow a unique canonical pattern, compatible with the U2-dependent splicing machinery. Numerous noncanonical junctions were observed in viral circRNA sequences characterized from in vitro and in vivo infections. Given the importance of the genes involved in the transcription of these circRNAs, our study contributes to our understanding and complexity of this deadly pathogen. IMPORTANCE Circular RNAs (circRNAs) were rediscovered in recent years both in physiological and pathological contexts, such as in cancer. Viral circRNAs are encoded by at least two human herpesviruses, the Epstein Barr virus and the Kaposi's Sarcoma-associated herpesvirus, both associated with the development of lymphoma. Marek's disease virus (MDV) is a well-established animal model to study virus-induced lymphoma but circRNA expression has not been reported for MDV yet. Our study provided the first evidence of viral circRNAs that were expressed at key steps of the MDV lifecycle using genome-wide analyses of circRNAs. These circRNAs were primarily found in transcriptional units that corresponded to the major MDV virulence factors. In addition, we established a bioinformatics pipeline that offers a new tool to identify circular RNAs in other herpesviruses. This study on the circRNAs provided important insights into major MDV virulence genes and herpesviruses-mediated gene dysregulation.


Subject(s)
Epstein-Barr Virus Infections , Herpesvirus 2, Gallid , Marek Disease , RNA, Circular , Animals , Chickens , Genome-Wide Association Study , Herpesvirus 2, Gallid/genetics , Herpesvirus 2, Gallid/pathogenicity , Lymphoma/virology , Marek Disease/virology , Oncogene Proteins, Viral/genetics , RNA, Circular/genetics , RNA, Untranslated/genetics , Virulence/genetics
10.
Virology ; 568: 115-125, 2022 03.
Article in English | MEDLINE | ID: mdl-35152043

ABSTRACT

Marek's disease (MD) vaccines reduce the incidence of MD but cannot control virus shedding. To develop new vaccines, it is essential to elucidate mechanisms of immunity to Marek's disease virus (MDV) infection. In this regard, gamma delta (γδ) T cells may play a significant role in prevention of viral spread and tumor surveillance. Here we demonstrated that MDV vaccination induced interferon (IFN)-γ+CD8α+ γδ T cells and transforming growth factor (TGF)-ß+ γδ T cells in lungs. γδ T cells from MDV-infected chickens exhibited cytotoxic activity. Importantly, γδ T cells from the vaccinated/challenged group exhibited maximum cytotoxic activity following ex vivo stimulation. These results suggest that MDV vaccines activate effector γδ T cells which may be involved in the development of protective immune responses against MD. Further, it was demonstrated that MDV infection increases the frequency of a subpopulation of γδ T cells expressing membrane-bound TGF-ß in MDV-infected birds.


Subject(s)
Chickens/immunology , Marek Disease/immunology , Receptors, Antigen, T-Cell, gamma-delta/metabolism , T-Lymphocyte Subsets/immunology , T-Lymphocyte Subsets/metabolism , Animals , Biomarkers , Chickens/virology , Cytokines , High-Throughput Nucleotide Sequencing , Host-Pathogen Interactions/genetics , Host-Pathogen Interactions/immunology , Immunization , Immunophenotyping , Lymphocyte Activation , Lymphocyte Count , Marek Disease/prevention & control , Marek Disease/virology , Poultry Diseases/immunology , Poultry Diseases/prevention & control , Poultry Diseases/virology , Viral Vaccines/immunology , Virus Replication , Virus Shedding
11.
Viruses ; 14(1)2022 01 09.
Article in English | MEDLINE | ID: mdl-35062316

ABSTRACT

Vaccines against Marek's disease can protect chickens against clinical disease; however, infected chickens continue to propagate the Marek's disease virus (MDV) in feather follicles and can shed the virus into the environment. Therefore, the present study investigated if MDV could induce an immunoregulatory microenvironment in feathers of chickens and whether vaccines can overcome the immune evasive mechanisms of MDV. The results showed an abundance of CD4+CD25+ and CD4+ transforming growth factor-beta (TGF-ß)+ T regulatory cells in the feathers of MDV-infected chickens at 21 days post-infection. In contrast, vaccinated chickens had a lower number of regulatory T cells. Furthermore, the expression of TGF-ß and programmed cell death receptor (PD)-1 increased considerably in the feathers of Marek's disease virus-infected chickens. The results of the present study raise the possibility of an immunoregulatory environment in the feather pulp of MDV-infected chickens, which may in turn favor replication of infectious MDV in this tissue. Exploring the evasive strategies employed by MDV will facilitate the development of control measures to prevent viral replication and transmission.


Subject(s)
Chickens/virology , Feathers/virology , Marek Disease/immunology , Animals , CD4-Positive T-Lymphocytes , CD8-Positive T-Lymphocytes , Gene Expression , Herpesvirus 2, Gallid/immunology , Marek Disease/virology , Marek Disease Vaccines/immunology , Spleen/immunology , Transforming Growth Factor beta/genetics , Transforming Growth Factor beta/metabolism , Vaccination , Viral Load/veterinary , Virus Replication/physiology
12.
BMC Vet Res ; 18(1): 30, 2022 Jan 12.
Article in English | MEDLINE | ID: mdl-35016700

ABSTRACT

BACKGROUND: Marek's disease (MD) is a lymphoproliferative disease caused by Gallid alphaherpesvirus 2 (GaHV-2, MDV-1), which primarily affects chickens. However, the virus is also able to induce tumors and polyneuritis in turkeys, albeit less frequently than in chickens. RESULTS: This is the first study in Turkey reporting the molecular characterization of a MDV-1 strain detected in a flock of backyard turkeys exhibiting visceral lymphoma. Here, MEQ, vIL-8, pp38 and 132-bp tandem repeat regions, which are frequently preferred in the pathotyping of MDV-1, were examined. It was determined that the MEQ gene of MDV-1/TR-21/turkey strain obtained in the present study encoded 339 amino acids (1020 nt) and had four proline-rich repeat regions (PPPP). Based on the nucleotide sequence of the MEQ gene of the MDV-1/TR-21/turkey strain, a phylogenetic tree was created using the MEGA-X software with the Maximum Likelihood Method (in 1000 replicates). Our strain was highly identical (> 99.8) to the Italian/Ck/625/16, Polish (Polen5) and some Turkish (Layer-GaHV-2-02-TR-2017, Tr/MDV-1/19) MDV-1 strains. Also, nt and aa sequences of the MEQ gene of our strain were 99.1 and 99.41% identical to another Turkish strain (MDV/Tur/2019) originated from chickens. Sequence analysis of pp38 and vIL-8 genes also supported the above finding. The identity ratios of nucleotide and amino acid sequences of vIL-8 and pp38 genes of MDV-1/TR-21/turkey strain were 99.64-100% and 99.79-100%, respectively, when compared with those of the Polish strain. According to 132-bp tandem repeat PCR results, the MDV-1/TR-21/turkey strain had five copies. CONCLUSIONS: These results suggested that the MDV-1/TR-21/turkey strain obtained from backyard turkeys can be either very virulent or very virulent plus pathotype, though experimental inoculation is required for precise pathotyping.


Subject(s)
Herpesvirus 2, Gallid , Marek Disease , Poultry Diseases , Animals , Herpesvirus 2, Gallid/genetics , Marek Disease/epidemiology , Marek Disease/virology , Phylogeny , Poultry Diseases/epidemiology , Poultry Diseases/virology , Serogroup , Turkey , Turkeys/virology
13.
J Virol ; 96(5): e0142721, 2022 03 09.
Article in English | MEDLINE | ID: mdl-34936483

ABSTRACT

Latency is a hallmark of herpesviruses, allowing them to persist in their host without virion production. Acute exposure to hypoxia (below 3% O2) was identified as a trigger of latent-to-lytic switch (reactivation) for human oncogenic gammaherpesviruses (Kaposi's sarcoma-associated virus [KSHV] and Epstein-Barr virus [EBV]). Therefore, we hypothesized that hypoxia could also induce reactivation of Marek's disease virus (MDV), which shares biological properties with EBV and KSHV (notably oncogenic properties), in lymphocytes. Acute exposure to hypoxia (1% O2) of two MDV-latently infected cell lines derived from MD tumors (3867K and MSB-1) induced MDV reactivation. A bioinformatic analysis of the RB-1B MDV genome revealed 214 putative hypoxia response element consensus sequences on 119 open reading frames. Reverse transcriptase quantitative PCR (RT-qPCR) analysis showed five MDV genes strongly upregulated early after hypoxia. In 3867K cells under normoxia, pharmacological agents mimicking hypoxia (MLN4924 and CoCl2) increased MDV reactivation, but to a lower level than real hypoxia. Overexpression of wild-type or stabilized human hypoxia inducible factor 1α (HIF-1α) in MSB-1 cells in normoxia also promoted MDV reactivation. Under such conditions, the lytic cycle was detected in cells with a sustainable HIF-1α expression but also in HIF-1α-negative cells, indicating that MDV reactivation is mediated by HIF-1 in a direct and/or indirect manner. Lastly, we demonstrated by a reporter assay that HIF-1α overexpression induced the transactivation of two viral promoters, shown to be upregulated in hypoxia. These results suggest that hypoxia may play a crucial role in the late lytic replication phase observed in vivo in MDV-infected chickens exhibiting tumors, since a hypoxic microenvironment is a hallmark of most solid tumors. IMPORTANCE Latent-to-lytic switch of herpesviruses (also known as reactivation) is responsible for pathology recurrences and/or viral shedding. Studying physiological triggers of reactivation is therefore important for health to limit lesions and viral transmission. Marek's disease virus (MDV) is a potent oncogenic alphaherpesvirus establishing latency in T lymphocytes and causing lethal T lymphomas in chickens. In vivo, a second lytic phase is observed during the tumoral stage. Hypoxia being a hallmark of tumors, we wondered whether hypoxia induces MDV reactivation in latently infected T lymphocytes, like previously shown for EBV and KSHV in B lymphocytes. In this study, we demonstrated that acute hypoxia (1% O2) triggers MDV reactivation in two MDV transformed T-cell lines. We provide some molecular basis of this reactivation by showing that hypoxia inducible factor 1 (HIF-1) overexpression induces MDV reactivation to an extent similar to that of hypoxia after 24 h. Hypoxia is therefore a reactivation stimulus shared by mammalian and avian oncogenic herpesviruses of different genera.


Subject(s)
Herpesvirus 2, Gallid , Hypoxia-Inducible Factor 1 , Hypoxia , Marek Disease , T-Lymphocytes , Virus Activation , Animals , Cell Line, Tumor , Chickens , Herpesvirus 2, Gallid/genetics , Hypoxia/virology , Hypoxia-Inducible Factor 1/metabolism , Lymphoma , Marek Disease/virology , T-Lymphocytes/virology
14.
Genes (Basel) ; 12(12)2021 11 23.
Article in English | MEDLINE | ID: mdl-34946806

ABSTRACT

Marek's disease (MD) was an immunosuppression disease induced by Marek's disease virus (MDV). MD caused huge economic loss to the global poultry industry, but it also provided an ideal model for studying diseases induced by the oncogenic virus. Alternative splicing (AS) simultaneously produced different isoform transcripts, which are involved in various diseases and individual development. To investigate AS events in MD, RNA-Seq was performed in tumorous spleens (TS), spleens from the survivors (SS) without any lesion after MDV infection, and non-infected chicken spleens (NS). In this study, 32,703 and 25,217 AS events were identified in TS and SS groups with NS group as the control group, and 1198, 1204, and 348 differently expressed (DE) AS events (p-value < 0.05 and FDR < 0.05) were identified in TS vs. NS, TS vs. SS, SS vs. NS, respectively. Additionally, Function enrichment analysis showed that ubiquitin-mediated proteolysis, p53 signaling pathway, and phosphatidylinositol signaling system were significantly enriched (p-value < 0.05). Small structural variations including SNP and indel were analyzed based on RNA-Seq data, and it showed that the TS group possessed more variants on the splice site region than those in SS and NS groups, which might cause more AS events in the TS group. Combined with previous circRNA data, we found that 287 genes could produce both circular and linear RNAs, which suggested these genes were more active in MD lymphoma transformation. This study has expanded the understanding of the MDV infection process and provided new insights for further analysis of resistance/susceptibility mechanisms.


Subject(s)
Alternative Splicing/genetics , Chickens/genetics , Chickens/virology , Marek Disease/genetics , Spleen/virology , Animals , Gene Expression Profiling/methods , Mardivirus/pathogenicity , Marek Disease/virology , Polymorphism, Single Nucleotide/genetics , RNA/genetics , RNA Splice Sites/genetics , RNA, Circular/genetics , Signal Transduction/genetics
15.
Vet Microbiol ; 262: 109248, 2021 Nov.
Article in English | MEDLINE | ID: mdl-34628274

ABSTRACT

MicroRNAs (miRNAs) are a class of approximately 22 nucleotides long non-coding RNAs, and virus-encoded miRNAs play an important role in pathogenesis. Marek's disease virus (MDV) is an oncogenic avian alphaherpesvirus that causes immunosuppression and tumors in its natural host, chicken. In the MDV genome, 14 miRNA precursors and 26 mature miRNAs were identified, thus MDV has been used as a model to study the function of viral miRNAs in vivo. Recently, a cluster of miRNAs encoded by MDV, Cluster 3 miRNAs (miR-M8-M10), has been shown to restrict early cytolytic replication and pathogenesis of MDV. In this study, we further analyzed the role of miR-M6 and miR-M10, members of cluster miR-M8-M10, in MDV replication and pathogenicity. We found that, compared to parental MDV, deletion of miR-M6-5p significantly enhanced the replication of MDV in cell culture, but not in chickens. The replication of miR-M6-5p deletion MDV was restored once the deleted sequences were re-inserted. Our results also showed that deletion of miR-M10-5p did not affect the replication of MDV in vitro and in vivo. In addition, our animal study results showed that deletion of miR-M6-5p or miR-M10-5p did not alter the pathogenesis of MDV. In conclusion, our study shows that both miR-M6 and miR-M10 are dispensable for MDV replication and pathogenesis in chickens, while also suggests a repressive role of miR-M6 in MDV replication in cell culture.


Subject(s)
Herpesvirus 2, Gallid , Marek Disease , MicroRNAs , Virus Replication , Animals , Cells, Cultured , Chickens , Herpesvirus 2, Gallid/genetics , Marek Disease/physiopathology , Marek Disease/virology , MicroRNAs/genetics , MicroRNAs/metabolism , Virus Replication/genetics
16.
Genes (Basel) ; 12(10)2021 10 17.
Article in English | MEDLINE | ID: mdl-34681024

ABSTRACT

The avian α-herpesvirus known as Marek's disease virus (MDV) linearly integrates its genomic DNA into host telomeres during infection. The resulting disease, Marek's disease (MD), is characterized by virally-induced lymphomas with high mortality. The temporal dynamics of MDV-positive (MDV+) transformed cells and expansion of MD lymphomas remain targets for further understanding. It also remains to be determined whether specific host chromosomal sites of MDV telomere integration confer an advantage to MDV-transformed cells during tumorigenesis. We applied MDV-specific fluorescence in situ hybridization (MDV FISH) to investigate virus-host cytogenomic interactions within and among a total of 37 gonad lymphomas and neoplastic splenic samples in birds infected with virulent MDV. We also determined single-cell, chromosome-specific MDV integration profiles within and among transformed tissue samples, including multiple samples from the same bird. Most mitotically-dividing cells within neoplastic samples had the cytogenomic phenotype of 'MDV telomere-integrated only', and tissue-specific, temporal changes in phenotype frequencies were detected. Transformed cell populations composing gonad lymphomas exhibited significantly lower diversity, in terms of heterogeneity of MDV integration profiles, at the latest stages of tumorigenesis (>50 days post-infection (dpi)). We further report high interindividual and lower intraindividual variation in MDV integration profiles of lymphoma cells. There was no evidence of integration hotspots into a specific host chromosome(s). Collectively, our data suggests that very few transformed MDV+ T cell populations present earlier in MDV-induced lymphomas (32-50 dpi), survive, and expand to become the dominant clonal population in more advanced MD lymphomas (51-62 dpi) and establish metastatic lymphomas.


Subject(s)
Herpesvirus 2, Gallid/genetics , Lymphoma/genetics , Marek Disease/genetics , Poultry Diseases/genetics , Animals , Carcinogenesis/genetics , Chickens/genetics , Chickens/virology , Herpesvirus 2, Gallid/pathogenicity , Host-Pathogen Interactions/genetics , In Situ Hybridization, Fluorescence , Lymphoma/etiology , Lymphoma/pathology , Lymphoma/virology , Marek Disease/complications , Marek Disease/pathology , Marek Disease/virology , Poultry Diseases/virology , Splenic Neoplasms/etiology , Splenic Neoplasms/genetics , Splenic Neoplasms/pathology , T-Lymphocytes/virology , Telomere/genetics , Telomere/virology , Virus Integration/genetics
17.
Vet Res ; 52(1): 125, 2021 Sep 30.
Article in English | MEDLINE | ID: mdl-34593043

ABSTRACT

Efficient in vivo delivery of a CRISPR/Cas9 plasmid is of paramount importance for effective therapy. Here, we investigated the usability of Salmonella as a plasmid carrier for in vivo therapy against virus-induced cancer using Marek's disease virus (MDV) as a model for study in chickens. A green fluorescent protein-expressing CRISPR/Cas9 plasmid encoding the virulence gene pp38 was constructed against Marek's disease virus. Therapeutic plasmids were transformed into Salmonella carrying lon and sifA gene deletions. The animals in 5 groups were intraperitoneally inoculated with phosphate-buffered saline, vector control, or Salmonella before or after MDV infection, or left uninfected as a naïve control. Therapeutic effectiveness was evaluated by observing disease outcomes and the viral copy number in peripheral blood mononuclear cells. The efficacy of plasmid delivery by Salmonella was 13 ± 1.7% in the spleen and 8.0 ± 1.8% in the liver on the 6th day post-infection. The Salmonella-treated groups showed significant resistance to MDV infection. The maximum effect was observed in the group treated with Salmonella before MDV infection. None of the chickens fully recovered; however, the results suggested that timely delivery of Salmonella could be effective for in vivo CRISPR/Cas9-mediated genetic interference against highly pathogenic MDV. The use of Salmonella in CRISPR systems provides a simpler and more efficient platform for in vivo therapy with CRISPR than the use of conventional in vivo gene delivery methods and warrants further development.


Subject(s)
CRISPR-Cas Systems , Chickens , Herpesvirus 2, Gallid/physiology , Marek Disease/prevention & control , Plasmids/therapeutic use , Poultry Diseases/prevention & control , Salmonella/physiology , Animals , Female , Leukocytes, Mononuclear/virology , Marek Disease/pathology , Marek Disease/virology , Poultry Diseases/pathology , Poultry Diseases/virology , Salmonella/virology
18.
Viruses ; 13(8)2021 07 21.
Article in English | MEDLINE | ID: mdl-34452285

ABSTRACT

Marek's disease (MD) in chickens is caused by Gallid alphaherpesvirus 2, better known as MD herpesvirus (MDV). Current vaccines do not block interindividual spread from chicken-to-chicken, therefore, understanding MDV interindividual spread provides important information for the development of potential therapies to protect against MD, while also providing a natural host to study herpesvirus dissemination. It has long been thought that glycoprotein C (gC) of alphaherpesviruses evolved with their host based on their ability to bind and inhibit complement in a species-selective manner. Here, we tested the functional importance of gC during interindividual spread and host specificity using the natural model system of MDV in chickens through classical compensation experiments. By exchanging MDV gC with another chicken alphaherpesvirus (Gallid alphaherpesvirus 1 or infectious laryngotracheitis virus; ILTV) gC, we determined that ILTV gC could not compensate for MDV gC during interindividual spread. In contrast, exchanging turkey herpesvirus (Meleagrid alphaherpesvirus 1 or HVT) gC could compensate for chicken MDV gC. Both ILTV and MDV are Gallid alphaherpesviruses; however, ILTV is a member of the Iltovirus genus, while MDV is classified as a Mardivirus along with HVT. These results suggest that gC is functionally conserved based on the virus genera (Mardivirus vs. Iltovirus) and not the host (Gallid vs. Meleagrid).


Subject(s)
Antigens, Viral/metabolism , Chickens/virology , Herpesvirus 2, Gallid/physiology , Marek Disease/transmission , Marek Disease/virology , Viral Envelope Proteins/metabolism , Animals , Antigens, Viral/genetics , Cells, Cultured , Herpesvirus 1, Gallid/classification , Herpesvirus 1, Gallid/genetics , Herpesvirus 1, Meleagrid/classification , Herpesvirus 1, Meleagrid/genetics , Herpesvirus 2, Gallid/classification , Herpesvirus 2, Gallid/genetics , Recombinant Proteins/metabolism , Turkeys/virology , Viral Envelope Proteins/genetics , Virus Replication
19.
Vet Ital ; 57(1): 29-39, 2021 May 11.
Article in English | MEDLINE | ID: mdl-34313096

ABSTRACT

Marek's disease (MD) is one of the most significant neoplastic diseases of poultry caused by Marek's disease virus (MDV), an oncogenic avian herpesvirus which is responsible for great economic losses to the poultry industry worldwide. MD is being manifested as an acute disease with lymphomas in multiple visceral organs. In the present study, an outbreak of MD was investigated in one of the poultry farms from Andhra Pradesh, India. The gross lesions in the affected birds included lymphomas in different visceral organs like liver, spleen, proventriculus, heart and ovaries. Histopathology revealed presence of uniform lymphoblastoid cell infiltration typical of MD. The isolation of the virus was carried out in duck embryo fibroblast cells. After three blind passages, the cell cultures revealed plaque formation typical of MDV. Further confirmation of the virus was carried out by PCR targeting 132 bp repeats of serotype­1 MDV and the oncogenes Meq and vIL­8 were amplified and sequenced. The nucleotide and phylogenetic analysis of the virus confirmed the virus as virulent serotype­ 1 MDV. The present outbreak suggests the need for change in the vaccination regimen of MD vaccination with appropriate serotype­ 1 MD vaccines in Indian poultry flocks as the HVT and bivalent vaccines are unable to protect the flocks against virulent MDV.


Subject(s)
Disease Outbreaks/veterinary , Herpesvirus 2, Gallid/isolation & purification , Marek Disease/epidemiology , Poultry Diseases/epidemiology , Poultry , Animals , Disease Outbreaks/prevention & control , India/epidemiology , Marek Disease/virology , Polymerase Chain Reaction/veterinary , Poultry Diseases/virology , Vaccination/veterinary
20.
Vet Microbiol ; 259: 109082, 2021 Aug.
Article in English | MEDLINE | ID: mdl-34144834

ABSTRACT

MicroRNAs (miRNAs) are a class of ∼22 nucleotides non-coding RNAs that are encoded by a wide range of hosts. Viruses, especially herpesviruses, encode a variety of miRNAs that involved in disease progression. Recently, a cluster of virus-encoded miRNAs, miR-M8-M10, have been shown to restrict early cytolytic replication and pathogenesis of Marek's disease virus (MDV), an oncogenic avian alphaherpesvirus that causes lymphoproliferative disease in chickens. In this study, we specifically dissected the role of miR-M7, a member of cluster miR-M8-M10, in regulating MDV replication and pathogenesis. We found that deletion of miR-M7-5p did not affect the virus plaque size and growth in cell culture. However, compared to parental virus, infection of miR-M7-5p deletion virus significantly increased MDV genome copy number at 5 days post infection, suggesting that miR-M7 plays a role to restrict MDV replication during early cytolytic phase. In addition, our results showed that infection of miR-M7-5p deletion virus significantly enhanced the mortality of chickens, even it induced lymphoid organ atrophy similar to parental and revertant viruses. Taken together, our study revealed that the miR-M7 acts as a repressive factor of MDV replication and pathogenesis.


Subject(s)
Herpesvirus 2, Gallid/genetics , Herpesvirus 2, Gallid/pathogenicity , MicroRNAs/genetics , Viral Proteins/genetics , Virus Replication/genetics , Animals , Cells, Cultured , Chickens/virology , Fibroblasts/virology , Gene Deletion , Herpesvirus 2, Gallid/growth & development , Marek Disease/virology , Specific Pathogen-Free Organisms , Virulence Factors/genetics
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