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1.
Commun Biol ; 7(1): 1185, 2024 Sep 20.
Artigo em Inglês | MEDLINE | ID: mdl-39300162

RESUMO

The gut microbiota exerts profound influence on poultry immunity and metabolism through mechanisms that yet need to be elucidated. Here we used conventional and germ-free chickens to explore the influence of the gut microbiota on transcriptomic and metabolic signatures along the gut-lung axis in poultry. Our results demonstrated a differential regulation of certain metabolites and genes associated with innate immunity and metabolism in peripheral tissues of germ-free birds. Furthermore, we evidenced the gut microbiota's capacity to regulate mucosal immunity in the chicken lung during avian influenza virus infection. Finally, by fine-analysing the antiviral pathways triggered by the short-chain fatty acid (SCFA) butyrate in chicken respiratory epithelial cells, we found that it regulates interferon-stimulated genes (ISGs), notably OASL, via the transcription factor Sp1. These findings emphasize the pivotal role of the gut microbiota and its metabolites in shaping homeostasis and immunity in poultry, offering crucial insights into the mechanisms governing the communication between the gut and lungs in birds.


Assuntos
Butiratos , Galinhas , Microbioma Gastrointestinal , Pulmão , Animais , Galinhas/imunologia , Galinhas/microbiologia , Microbioma Gastrointestinal/imunologia , Butiratos/metabolismo , Pulmão/imunologia , Pulmão/metabolismo , Pulmão/microbiologia , Influenza Aviária/imunologia , Imunidade Inata
2.
Front Immunol ; 15: 1374838, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-39281683

RESUMO

Dendritic cells (DCs) are professional antigen-presenting cells, which are key components of the immune system and involved in early immune responses. DCs are specialized in capturing, processing, and presenting antigens to facilitate immune interactions. Chickens infected with avian influenza virus (AIV) demonstrate a wide range of clinical symptoms, based on pathogenicity of the virus. Low pathogenic avian influenza (LPAI) viruses typically induce mild clinical signs, whereas high pathogenic avian influenza (HPAI) induce more severe disease, which can lead to death. For this study, chicken bone marrow-derived DC (ckBM-DC)s were produced and infected with high and low pathogenic avian influenza viruses of H5N2 or H7N3 subtypes to characterize innate immune responses, study effect on cell morphologies, and evaluate virus replication. A strong proinflammatory response was observed at 8 hours post infection, via upregulation of chicken interleukin-1ß and stimulation of the interferon response pathway. Microscopically, the DCs underwent morphological changes from classic elongated dendrites to a more general rounded shape that eventually led to cell death with the presence of scattered cellular debris. Differences in onset of morphologic changes were observed between H5 and H7 subtypes. Increases in viral titers demonstrated that both HPAI and LPAI are capable of infecting and replicating in DCs. The increase in activation of infected DCs may be indicative of a dysregulated immune response typically seen with HPAI infections.


Assuntos
Galinhas , Citocinas , Células Dendríticas , Influenza Aviária , Animais , Células Dendríticas/imunologia , Células Dendríticas/virologia , Galinhas/virologia , Influenza Aviária/imunologia , Influenza Aviária/virologia , Influenza Aviária/patologia , Citocinas/metabolismo , Citocinas/imunologia , Vírus da Influenza A/imunologia , Replicação Viral , Células da Medula Óssea/imunologia , Células da Medula Óssea/virologia
3.
Microb Pathog ; 195: 106871, 2024 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-39163919

RESUMO

The H9N2 avian influenza virus (AIV) is spreading worldwide. Presence of H9N2 virus tends to increase the chances of infection with other pathogens which can lead to more serious economic losses. In a previous study, a regulated delayed lysis Salmonella vector was used to deliver a DNA vaccine named pYL233 encoding M1 protein, mosaic HA protein and chicken GM-CSF adjuvant. To further increase its efficiency, chitosan as a natural adjuvant was applied in this study. The purified plasmid pYL233 was coated with chitosan to form a DNA containing nanoparticles (named CS233) by ionic gel method and immunized by intranasal boost immunization in birds primed by oral administration with Salmonella strain. The CS233 DNA nanoparticle has a particle size of about 150 nm, with an encapsulation efficiency of 93.2 ± 0.12 % which protected the DNA plasmid from DNase I digestion and could be stable for a period of time at 37°. After intranasal boost immunization, the CS233 immunized chickens elicited higher antibody response, elevated CD4+ T cells and CD8+ T cells activation and increased T-lymphocyte proliferation, as well as increased productions of IL-4 and IFN-γ. After challenge, chickens immunized with CS233 resulted in the lowest levels of pulmonary virus titer and viral shedding as compared to the other challenge groups. The results showed that the combination of intranasal immunization with chitosan-coated DNA vaccine and oral immunization with regulatory delayed lytic Salmonella strain could enhance the immune response and able to provide protection against H9N2 challenge.


Assuntos
Administração Intranasal , Anticorpos Antivirais , Galinhas , Quitosana , Imunidade Celular , Vírus da Influenza A Subtipo H9N2 , Vacinas contra Influenza , Influenza Aviária , Plasmídeos , Vacinas de DNA , Eliminação de Partículas Virais , Animais , Vírus da Influenza A Subtipo H9N2/imunologia , Vírus da Influenza A Subtipo H9N2/genética , Vacinas de DNA/imunologia , Vacinas de DNA/administração & dosagem , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Galinhas/imunologia , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/administração & dosagem , Anticorpos Antivirais/sangue , Plasmídeos/genética , Nanopartículas , Imunização Secundária , Linfócitos T CD8-Positivos/imunologia , Adjuvantes Imunológicos/administração & dosagem , Interferon gama , Interleucina-4 , Adjuvantes de Vacinas , Doenças das Aves Domésticas/prevenção & controle , Doenças das Aves Domésticas/imunologia , Doenças das Aves Domésticas/virologia , Linfócitos T CD4-Positivos/imunologia , Salmonella/imunologia , Salmonella/genética
4.
Protein Expr Purif ; 223: 106541, 2024 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-38971212

RESUMO

Avian influenza poses a significant global health threat, with the potential for widespread pandemics and devastating consequences. Hemagglutinin (HA), a critical surface glycoprotein of influenza viruses, plays a pivotal role in viral entry and serves as a primary target for subunit vaccine development. In this study, we successfully cloned, expressed, and purified hemagglutinin from the circulating strain of H5N1 influenza virus using a robust molecular biology approach. The cloning process involved insertion of the synthetic HA gene into the pET21b vector, confirmed through double digestion and sequencing. SDS-PAGE analysis confirmed the presence of the expected 60 kDa protein band post-induction. Following expression, the protein was subjected to purification via Ni-NTA affinity chromatography, yielding pure protein fractions. Native PAGE analysis confirmed the protein's oligomeric forms, essential for optimal antigenicity. Western blot analysis further validated protein identity using anti-His and anti-HA antibodies. MALDI-TOF analysis confirmed the protein's sequence integrity, while hemagglutination assay demonstrated its biological activity in binding to N-acetyl neuraminic acid. These findings underscore the potential of recombinant hemagglutinin as a valuable antigen for diagnosis and biochemical assays as well as for vaccine development against avian influenza. In conclusion, this study represents a critical guide for bacterial production of H5N1 HA, which can be a cost-effective and simpler strategy compared to mammalian protein expression. Further research into optimizing vaccine candidates and production methods will be essential in combating the ongoing threat of avian influenza pandemics.


Assuntos
Glicoproteínas de Hemaglutininação de Vírus da Influenza , Virus da Influenza A Subtipo H5N1 , Virus da Influenza A Subtipo H5N1/genética , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/química , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/química , Glicoproteínas de Hemaglutininação de Vírus da Influenza/biossíntese , Proteínas Recombinantes/genética , Proteínas Recombinantes/química , Proteínas Recombinantes/biossíntese , Proteínas Recombinantes/imunologia , Proteínas Recombinantes/isolamento & purificação , Proteínas Recombinantes/metabolismo , Animais , Escherichia coli/genética , Escherichia coli/metabolismo , Hemaglutinação , Influenza Aviária/prevenção & controle , Influenza Aviária/virologia , Influenza Aviária/imunologia , Influenza Aviária/genética , Clonagem Molecular , Expressão Gênica , Multimerização Proteica , Humanos , Aves
5.
Viruses ; 16(7)2024 Jul 09.
Artigo em Inglês | MEDLINE | ID: mdl-39066264

RESUMO

The avian influenza virus, particularly the H5N1 strain, poses a significant and ongoing threat to both human and animal health. Recent outbreaks have affected domestic and wild birds on a massive scale, raising concerns about the virus' spread to mammals. This review focuses on the critical role of microRNAs (miRNAs) in modulating pro-inflammatory signaling pathways during the pathogenesis of influenza A virus (IAV), with an emphasis on highly pathogenic avian influenza (HPAI) H5 viral infections. Current research indicates that miRNAs play a significant role in HPAI H5 infections, influencing various aspects of the disease process. This review aims to synthesize recent findings on the impact of different miRNAs on immune function, viral cytopathogenicity, and respiratory viral replication. Understanding these mechanisms is essential for developing new therapeutic strategies to combat avian influenza and mitigate its effects on both human and animal populations.


Assuntos
Galinhas , Virus da Influenza A Subtipo H5N1 , Influenza Aviária , MicroRNAs , Replicação Viral , Animais , MicroRNAs/genética , MicroRNAs/metabolismo , Influenza Aviária/virologia , Influenza Aviária/imunologia , Virus da Influenza A Subtipo H5N1/genética , Virus da Influenza A Subtipo H5N1/patogenicidade , Galinhas/virologia , Humanos , Modelos Animais de Doenças , Influenza Humana/virologia , Influenza Humana/imunologia , Influenza Humana/genética , Interações Hospedeiro-Patógeno/genética , Interações Hospedeiro-Patógeno/imunologia
7.
PLoS One ; 19(7): e0307100, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-39012858

RESUMO

The outbreak of clade 2.3.4.4b H5 highly pathogenic avian influenza (HPAI) in North America that started in 2021 has increased interest in applying vaccination as a strategy to help control and prevent the disease in poultry. Two commercially available vaccines based on the recombinant herpes virus of turkeys (rHVT) vector were tested against a recent North American clade 2.3.4.4b H5 HPAI virus isolate: A/turkey/Indiana/22-003707-003/2022 H5N1 in specific pathogen free white leghorn (WL) chickens and commercial broiler chickens. One rHVT-H5 vaccine encodes a hemagglutinin (HA) gene designed by the computationally optimized broadly reactive antigen method (COBRA-HVT vaccine). The other encodes an HA gene of a clade 2.2 virus (2.2-HVT vaccine). There was 100% survival of both chicken types COBRA-HVT vaccinated groups and in the 2.2-HVT vaccinated groups there was 94.8% and 90% survival of the WL and broilers respectively. Compared to the 2.2-HVT vaccinated groups, WL in the COBRA-HVT vaccinated group shed significantly lower mean viral titers by the cloacal route and broilers shed significantly lower titers by the oropharyngeal route than broilers. Virus titers detected in oral and cloacal swabs were otherwise similar among both vaccine groups and chicken types. To assess antibody-based tests to identify birds that have been infected after vaccination (DIVA-VI), sera collected after the challenge were tested with enzyme-linked lectin assay-neuraminidase inhibition (ELLA-NI) for N1 neuraminidase antibody detection and by commercial ELISA for detection of antibodies to the NP protein. As early as 7 days post challenge (DPC) 100% of the chickens were positive by ELLA-NI. ELISA was less sensitive with a maximum of 75% positive at 10DPC in broilers vaccinated with 2.2-HVT. Both vaccines provided protection from challenge to both types of chickens and ELLA-NI was sensitive at identifying antibodies to the challenge virus therefore should be evaluated further for DIVA-VI.


Assuntos
Galinhas , Virus da Influenza A Subtipo H5N1 , Vacinas contra Influenza , Influenza Aviária , Animais , Galinhas/virologia , Galinhas/imunologia , Influenza Aviária/prevenção & controle , Influenza Aviária/virologia , Influenza Aviária/imunologia , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/genética , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/administração & dosagem , Vacinas Sintéticas/imunologia , Vacinas Sintéticas/administração & dosagem , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Anticorpos Antivirais/imunologia , Anticorpos Antivirais/sangue , América do Norte , Vacinação , Doenças das Aves Domésticas/prevenção & controle , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/imunologia , Herpesvirus Meleagrídeo 1/imunologia , Herpesvirus Meleagrídeo 1/genética
8.
ACS Infect Dis ; 10(8): 3026-3041, 2024 Aug 09.
Artigo em Inglês | MEDLINE | ID: mdl-38970488

RESUMO

Low-pathogenic avian influenza virus (LPAIV) remains the most common subtype of type-A influenza virus that causes moderate to severe infection in poultry with significant zoonotic and pandemic potential. Due to high mutability, increasing drug resistance, and limited vaccine availability, the conventional means to prevent intra- or interspecies transmission of AIV is highly challenging. As an alternative to control AIV infections, cytokine-based approaches to augment antiviral host defense have gained significant attention. However, the selective application of cytokines is critical since unregulated expression of cytokines, particularly proinflammatory ones, can cause substantial tissue damage during acute phases of immune responses. Moreover, depending on the type of cytokine and its impact on intestinal microbiota, outcomes of cytokine-gut microflora interaction can have a critical effect on overall host defense against AIV infections. Our recent study demonstrated some prominent roles of chicken IL-17A (ChIL-17A) in regulating antiviral host responses against AIV infection, however, in an in vitro model. For more detailed insights into ChIL-17A function, in the present study, we investigated whether ChIL-17A-meditated elevated antiviral host responses can translate into effective immune protection against AIV infection in an in vivo system. Moreover, considering the role of gut health in fostering innate or local host responses, we further studied the contributory relationships between gut microbiota and host immunity against AIV infection in chickens. For this, we employed a recombinant lactic acid-producing bacterial (LAB) vector, Lactococcus lactis, expressing ChIL-17A and analyzed the in vivo functionality in chickens against an LPAIV (A/H9N2) infection. Our study delineates that mucosal delivery of rL. lactis expressing ChIL-17A triggers proinflammatory signaling cascades and can drive a positive shift in phylum Firmicutes, along with a marked decline in phylum Actinobacteriota and Proteobacteria, favoring effective antiviral host responses against AIV infection in chickens. We propose that ChIL-17A-mediated selective expansion of beneficial gut microbiota might form a healthy microbial community that augments the effective immune protection against AIV infections in chickens.


Assuntos
Galinhas , Microbioma Gastrointestinal , Influenza Aviária , Interleucina-17 , Animais , Influenza Aviária/imunologia , Influenza Aviária/prevenção & controle , Influenza Aviária/virologia , Interleucina-17/genética , Interleucina-17/imunologia , Vírus da Influenza A/imunologia , Vetores Genéticos , Doenças das Aves Domésticas/imunologia , Doenças das Aves Domésticas/prevenção & controle , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/microbiologia
9.
Nat Commun ; 15(1): 5593, 2024 Jul 03.
Artigo em Inglês | MEDLINE | ID: mdl-38961067

RESUMO

Human cases of avian influenza virus (AIV) infections are associated with an age-specific disease burden. As the influenza virus N2 neuraminidase (NA) gene was introduced from avian sources during the 1957 pandemic, we investigate the reactivity of N2 antibodies against A(H9N2) AIVs. Serosurvey of healthy individuals reveal the highest rates of AIV N2 antibodies in individuals aged ≥65 years. Exposure to the 1968 pandemic N2, but not recent N2, protected against A(H9N2) AIV challenge in female mice. In some older adults, infection with contemporary A(H3N2) virus could recall cross-reactive AIV NA antibodies, showing discernable human- or avian-NA type reactivity. Individuals born before 1957 have higher anti-AIV N2 titers compared to those born between 1957 and 1968. The anti-AIV N2 antibodies titers correlate with antibody titers to the 1957 N2, suggesting that exposure to the A(H2N2) virus contribute to this reactivity. These findings underscore the critical role of neuraminidase immunity in zoonotic and pandemic influenza risk assessment.


Assuntos
Anticorpos Antivirais , Reações Cruzadas , Vírus da Influenza A Subtipo H3N2 , Influenza Humana , Neuraminidase , Pandemias , Neuraminidase/imunologia , Neuraminidase/genética , Animais , Humanos , Anticorpos Antivirais/imunologia , Anticorpos Antivirais/sangue , Vírus da Influenza A Subtipo H3N2/imunologia , Feminino , Reações Cruzadas/imunologia , Camundongos , Influenza Humana/imunologia , Influenza Humana/epidemiologia , Influenza Humana/virologia , Idoso , Vírus da Influenza A Subtipo H2N2/imunologia , Vírus da Influenza A Subtipo H2N2/genética , Masculino , Infecções por Orthomyxoviridae/imunologia , Infecções por Orthomyxoviridae/virologia , Infecções por Orthomyxoviridae/epidemiologia , Infecções por Orthomyxoviridae/veterinária , Aves/virologia , Pessoa de Meia-Idade , Influenza Aviária/epidemiologia , Influenza Aviária/imunologia , Influenza Aviária/virologia , Vírus da Influenza A Subtipo H9N2/imunologia , Adulto , Proteínas Virais/imunologia , Proteínas Virais/genética
10.
Viruses ; 16(6)2024 May 23.
Artigo em Inglês | MEDLINE | ID: mdl-38932122

RESUMO

In this study, we pioneered an alternative technology for manufacturing subunit influenza hemagglutinin (HA)-based vaccines. This innovative method involves harnessing the pupae of the Lepidoptera Trichoplusia ni (T. ni) as natural biofactories in combination with baculovirus vectors (using CrisBio® technology). We engineered recombinant baculoviruses encoding two versions of the HA protein (trimeric or monomeric) derived from a pandemic avian H7N1 virus A strain (A/chicken/Italy/5093/99). These were then used to infect T. ni pupae, resulting in the production of the desired recombinant antigens. The obtained HA proteins were purified using affinity chromatography, consistently yielding approximately 75 mg/L of insect extract. The vaccine antigen effectively immunized poultry, which were subsequently challenged with a virulent H7N1 avian influenza virus. Following infection, all vaccinated animals survived without displaying any clinical symptoms, while none of the mock-vaccinated control animals survived. The CrisBio®-derived antigens induced high titers of HA-specific antibodies in the vaccinated poultry, demonstrating hemagglutination inhibition activity against avian H7N1 and human H7N9 viruses. These results suggest that the CrisBio® technology platform has the potential to address major industry challenges associated with producing recombinant influenza subunit vaccines, such as enhancing production yields, scalability, and the speed of development, facilitating the global deployment of highly effective influenza vaccines.


Assuntos
Anticorpos Antivirais , Galinhas , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Vacinas contra Influenza , Influenza Aviária , Pupa , Vacinas de Subunidades Antigênicas , Animais , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/genética , Vacinas contra Influenza/administração & dosagem , Pupa/imunologia , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Vacinas de Subunidades Antigênicas/imunologia , Vacinas de Subunidades Antigênicas/genética , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Anticorpos Antivirais/imunologia , Anticorpos Antivirais/sangue , Vírus da Influenza A Subtipo H7N1/imunologia , Vírus da Influenza A Subtipo H7N1/genética , Baculoviridae/genética , Subtipo H7N9 do Vírus da Influenza A/imunologia , Subtipo H7N9 do Vírus da Influenza A/genética , Humanos , Desenvolvimento de Vacinas , Mariposas/imunologia , Pandemias/prevenção & controle
11.
Int J Biol Macromol ; 273(Pt 2): 132901, 2024 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-38848854

RESUMO

H5-subtype avian influenza virus (AIV) is globally prevalent and undergoes frequent antigenic drift, necessitating regular updates to vaccines. One of the many influencing elements that cause incompatibility between vaccinations and epidemic strains is the dynamic alteration of glycosylation sites. However, the biological significance of N-glycosylation in the viral evolution and antigenic changes is unclear. Here, we performed a systematic analysis of glycosylation sites on the HA1 subunit of H5N1, providing insights into the changes of primary glycosylation sites, including 140 N, 156 N, and 170 N within the antigenic epitopes of HA1 protein. Multiple recombinant viruses were then generated based on HA genes of historical vaccine strains and deactivated for immunizing SPF chickens. Inactivated recombinant strains showed relatively closer antigenicity compared to which has identical N-glycosylation patterns. The N-glycosylation modification discrepancy highlights the inter-branch antigenic diversity of H5-subtype viruses in avian influenza and serves as a vital foundation for improving vaccination tactics.


Assuntos
Variação Antigênica , Galinhas , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Virus da Influenza A Subtipo H5N1 , Influenza Aviária , Glicosilação , Animais , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Glicoproteínas de Hemaglutininação de Vírus da Influenza/química , Galinhas/virologia , Influenza Aviária/imunologia , Influenza Aviária/virologia , Influenza Aviária/prevenção & controle , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/genética , Vacinas contra Influenza/imunologia , Epitopos/imunologia , Epitopos/química , Antígenos Virais/imunologia , Antígenos Virais/genética
12.
J Infect ; 89(2): 106199, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38901571

RESUMO

The sustained circulation of H9N2 avian influenza viruses (AIVs) poses a significant threat for contributing to a new pandemic. Given the temporal and spatial uncertainty in the antigenicity of H9N2 AIVs, the immune protection efficiency of vaccines remains challenging. By developing an antigenicity prediction method for H9N2 AIVs, named PREDAC-H9, the global antigenic landscape of H9N2 AIVs was mapped. PREDAC-H9 utilizes the XGBoost model with 14 well-designed features. The XGBoost model was built and evaluated to predict the antigenic relationship between any two viruses with high values of 81.1 %, 81.4 %, 81.3 %, 81.1 %, and 89.4 % in accuracy, precision, recall, F1 value, and area under curve (AUC), respectively. Then the antigenic correlation network (ACnet) was constructed based on the predicted antigenic relationship for H9N2 AIVs from 1966 to 2022, and ten major antigenic clusters were identified. Of these, four novel clusters were generated in China in the past decade, demonstrating the unique complex situation there. To help tackle this situation, we applied PREDAC-H9 to calculate the cluster-transition determining sites and screen out virus strains with the high cross-protective spectrum, thus providing an in silico reference for vaccine recommendation. The proposed model will reduce the clinical monitoring workload and provide a useful tool for surveillance and control of H9N2 AIVs.


Assuntos
Antígenos Virais , Vírus da Influenza A Subtipo H9N2 , Vacinas contra Influenza , Influenza Aviária , Vírus da Influenza A Subtipo H9N2/imunologia , Vírus da Influenza A Subtipo H9N2/genética , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/administração & dosagem , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Animais , Antígenos Virais/imunologia , China , Aves
13.
Int J Pharm ; 660: 124318, 2024 Jul 20.
Artigo em Inglês | MEDLINE | ID: mdl-38852750

RESUMO

Avian influenza virus subtype H9N2 has the ability to infect birds and humans, further causing significant losses to the poultry industry and even posing a great threat to human health. Oral vaccine received particular interest for preventing majority infection due to its ability to elicit both mucosal and systemic immune responses, but their development is limited by the bad gastrointestinal (GI) environment, compact epithelium and mucus barrier, and the lack of effective mucosal adjuvants. Herein, we developed the dendritic fibrous nano-silica (DFNS) grafted with Cistanche deserticola polysaccharide (CDP) nanoparticles (CDP-DFNS) as an adjuvant for H9N2 vaccine. Encouragingly, CDP-DFNS facilitated the proliferation of T and B cells, and further induced the activation of T lymphocytes in vitro. Moreover, CDP-DFNS/H9N2 significantly promoted the antigen-specific antibodies levels in serum and intestinal mucosal of chickens, indicating the good ability to elicit both systemic and mucosal immunity. Additional, CDP-DFNS facilitate the activation of CD4 + and CD8 + T cells both in spleen and intestinal mucosal, and the indexes of immune organs. This study suggested that CDP-DFNS may be a new avenue for development of oral vaccine against pathogens that are transmitted via mucosal route.


Assuntos
Adjuvantes Imunológicos , Galinhas , Imunidade nas Mucosas , Vírus da Influenza A Subtipo H9N2 , Vacinas contra Influenza , Influenza Aviária , Nanopartículas , Polissacarídeos , Dióxido de Silício , Animais , Vírus da Influenza A Subtipo H9N2/imunologia , Vírus da Influenza A Subtipo H9N2/efeitos dos fármacos , Polissacarídeos/administração & dosagem , Polissacarídeos/farmacologia , Polissacarídeos/química , Polissacarídeos/imunologia , Dióxido de Silício/administração & dosagem , Dióxido de Silício/química , Nanopartículas/administração & dosagem , Vacinas contra Influenza/administração & dosagem , Vacinas contra Influenza/imunologia , Imunidade nas Mucosas/efeitos dos fármacos , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Adjuvantes Imunológicos/administração & dosagem , Adjuvantes Imunológicos/farmacologia , Administração Oral , Mucosa Intestinal/imunologia , Mucosa Intestinal/efeitos dos fármacos , Anticorpos Antivirais/sangue , Anticorpos Antivirais/imunologia
14.
J Immunol ; 213(2): 187-203, 2024 07 15.
Artigo em Inglês | MEDLINE | ID: mdl-38829131

RESUMO

The RING finger (RNF) family, a group of E3 ubiquitin ligases, plays multiple essential roles in the regulation of innate immunity and resistance to viral infection in mammals. However, it is still unclear whether RNF proteins affect the production of IFN-I and the replication of avian influenza virus (AIV) in ducks. In this article, we found that duck RNF216 (duRNF216) inhibited the duRIG-I signaling pathway. Conversely, duRNF216 deficiency enhanced innate immune responses in duck embryonic fibroblasts. duRNF216 did not interacted with duRIG-I, duMDA5, duMAVS, duSTING, duTBK1, or duIRF7 in the duck RIG-I pathway. However, duRNF216 targeted duTRAF3 and inhibited duMAVS in the recruitment of duTRAF3 in a dose-dependent manner. duRNF216 catalyzed K48-linked polyubiquitination of duck TRAF3, which was degraded by the proteasome pathway. Additionally, AIV PB1 protein competed with duTRAF3 for binding to duRNF216 to reduce degradation of TRAF3 by proteasomes in the cytoplasm, thereby slightly weakening duRNF216-mediated downregulation of IFN-I. Moreover, although duRNF216 downregulated the IFN-ß expression during virus infection, the expression level of IFN-ß in AIV-infected duck embryonic fibroblasts overexpressing duRNF216 was still higher than that in uninfected cells, which would hinder the viral replication. During AIV infection, duRNF216 protein targeted the core protein PB1 of viral polymerase to hinder viral polymerase activity and viral RNA synthesis in the nucleus, ultimately strongly restricting viral replication. Thus, our study reveals a new mechanism by which duRNF216 downregulates innate immunity and inhibits AIV replication in ducks. These findings broaden our understanding of the mechanisms by which the duRNF216 protein affects AIV replication in ducks.


Assuntos
Patos , Imunidade Inata , Virus da Influenza A Subtipo H5N1 , Influenza Aviária , Transdução de Sinais , Ubiquitina-Proteína Ligases , Replicação Viral , Animais , Patos/imunologia , Patos/virologia , Replicação Viral/imunologia , Transdução de Sinais/imunologia , Influenza Aviária/imunologia , Influenza Aviária/virologia , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/fisiologia , Imunidade Inata/imunologia , Ubiquitina-Proteína Ligases/genética , Ubiquitina-Proteína Ligases/imunologia , Fibroblastos/imunologia , Fibroblastos/virologia , Proteínas Aviárias/imunologia , Proteínas Aviárias/genética , Proteínas Aviárias/metabolismo , Ubiquitinação , Proteína DEAD-box 58/metabolismo , Proteína DEAD-box 58/imunologia
15.
Nat Commun ; 15(1): 4350, 2024 May 23.
Artigo em Inglês | MEDLINE | ID: mdl-38782954

RESUMO

mRNA lipid nanoparticle (LNP) vaccines would be useful during an influenza virus pandemic since they can be produced rapidly and do not require the generation of egg-adapted vaccine seed stocks. Highly pathogenic avian influenza viruses from H5 clade 2.3.4.4b are circulating at unprecedently high levels in wild and domestic birds and have the potential to adapt to humans. Here, we generate an mRNA lipid nanoparticle (LNP) vaccine encoding the hemagglutinin (HA) glycoprotein from a clade 2.3.4.4b H5 isolate. The H5 mRNA-LNP vaccine elicits strong T cell and antibody responses in female mice, including neutralizing antibodies and broadly-reactive anti-HA stalk antibodies. The H5 mRNA-LNP vaccine elicits antibodies at similar levels compared to whole inactivated vaccines in female mice with and without prior H1N1 exposures. Finally, we find that the H5 mRNA-LNP vaccine is immunogenic in male ferrets and prevents morbidity and mortality of animals following 2.3.4.4b H5N1 challenge. Together, our data demonstrate that a monovalent mRNA-LNP vaccine expressing 2.3.4.4b H5 is immunogenic and protective in pre-clinical animal models.


Assuntos
Anticorpos Antivirais , Furões , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Virus da Influenza A Subtipo H5N1 , Vacinas contra Influenza , Nanopartículas , Infecções por Orthomyxoviridae , Vacinas de mRNA , Animais , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/administração & dosagem , Feminino , Camundongos , Nanopartículas/química , Masculino , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/genética , Anticorpos Antivirais/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Infecções por Orthomyxoviridae/prevenção & controle , Infecções por Orthomyxoviridae/imunologia , Infecções por Orthomyxoviridae/virologia , Vacinas de mRNA/imunologia , Anticorpos Neutralizantes/imunologia , Camundongos Endogâmicos BALB C , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Influenza Aviária/virologia , Humanos , RNA Mensageiro/genética , RNA Mensageiro/imunologia , RNA Mensageiro/metabolismo , Vírus da Influenza A Subtipo H1N1/imunologia , Vírus da Influenza A Subtipo H1N1/genética , Aves/virologia , Lipídeos/química , Lipossomos
16.
Vaccine ; 42(18): 3756-3767, 2024 Jul 11.
Artigo em Inglês | MEDLINE | ID: mdl-38724417

RESUMO

A Newcastle disease virus (NDV)-vectored vaccine expressing clade 2.3.4.4b H5 Hemagglutinin was developed and assessed for efficacy against H5N1 highly pathogenic avian influenza (HPAI) in specific pathogen-free (SPF) chickens, broilers, and domestic ducks. In SPF chickens, the live recombinant NDV-vectored vaccine, rK148/22-H5, achieved complete survival against HPAI and NDV challenges and significantly reduced viral shedding. Notably, the live rK148/22-H5 vaccine conferred good clinical protection in broilers despite the presence of maternally derived antibodies. Good clinical protection was observed in domestic ducks, with decreased viral shedding. It demonstrated complete survival and reduced cloacal viral shedding when used as an inactivated vaccine from SPF chickens. The rK148/22-H5 vaccine is potentially a viable and supportive option for biosecurity measure, effectively protecting in chickens against the deadly clade 2.3.4.4b H5 HPAI and NDV infections. Furthermore, it aligns with the strategy of Differentiating Infected from Vaccinated Animals (DIVA).


Assuntos
Anticorpos Antivirais , Galinhas , Patos , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Virus da Influenza A Subtipo H5N1 , Influenza Aviária , Vírus da Doença de Newcastle , Vacinas de Produtos Inativados , Vacinas Sintéticas , Eliminação de Partículas Virais , Animais , Galinhas/imunologia , Influenza Aviária/prevenção & controle , Influenza Aviária/imunologia , Vírus da Doença de Newcastle/imunologia , Vírus da Doença de Newcastle/genética , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/genética , Virus da Influenza A Subtipo H5N1/patogenicidade , Patos/virologia , Patos/imunologia , Vacinas de Produtos Inativados/imunologia , Vacinas de Produtos Inativados/administração & dosagem , Vacinas Sintéticas/imunologia , Vacinas Sintéticas/administração & dosagem , Vacinas Sintéticas/genética , Anticorpos Antivirais/imunologia , Anticorpos Antivirais/sangue , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Vacinas contra Influenza/imunologia , Vacinas contra Influenza/administração & dosagem , Vacinas contra Influenza/genética , Organismos Livres de Patógenos Específicos , Vacinas Atenuadas/imunologia , Vacinas Atenuadas/administração & dosagem , Vacinas Atenuadas/genética , Doenças das Aves Domésticas/prevenção & controle , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/imunologia , Doença de Newcastle/prevenção & controle , Doença de Newcastle/imunologia , Vacinas Virais/imunologia , Vacinas Virais/administração & dosagem , Vacinas Virais/genética
17.
FEMS Microbiol Rev ; 48(3)2024 May 08.
Artigo em Inglês | MEDLINE | ID: mdl-38734891

RESUMO

Avian influenza viruses evolve antigenically to evade host immunity. Two influenza A virus surface glycoproteins, the haemagglutinin and neuraminidase, are the major targets of host immunity and undergo antigenic drift in response to host pre-existing humoral and cellular immune responses. Specific sites have been identified as important epitopes in prominent subtypes such as H5 and H7, which are of animal and public health significance due to their panzootic and pandemic potential. The haemagglutinin is the immunodominant immunogen, it has been extensively studied, and the antigenic reactivity is closely monitored to ensure candidate vaccine viruses are protective. More recently, the neuraminidase has received increasing attention for its role as a protective immunogen. The neuraminidase is expressed at a lower abundance than the haemagglutinin on the virus surface but does elicit a robust antibody response. This review aims to compile the current information on haemagglutinin and neuraminidase epitopes and immune escape mutants of H5 and H7 highly pathogenic avian influenza viruses. Understanding the evolution of immune escape mutants and the location of epitopes is critical for identification of vaccine strains and development of broadly reactive vaccines that can be utilized in humans and animals.


Assuntos
Aves , Epitopos , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Influenza Aviária , Neuraminidase , Neuraminidase/imunologia , Neuraminidase/genética , Animais , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Glicoproteínas de Hemaglutininação de Vírus da Influenza/química , Epitopos/imunologia , Epitopos/genética , Aves/virologia , Influenza Aviária/imunologia , Influenza Aviária/virologia , Deriva e Deslocamento Antigênicos/imunologia , Humanos , Virus da Influenza A Subtipo H5N1/imunologia , Virus da Influenza A Subtipo H5N1/genética , Influenza Humana/imunologia , Influenza Humana/virologia , Influenza Humana/prevenção & controle , Proteínas Virais/imunologia , Proteínas Virais/genética , Proteínas Virais/química , Vírus da Influenza A/imunologia , Vírus da Influenza A/genética
18.
Molecules ; 29(9)2024 Apr 24.
Artigo em Inglês | MEDLINE | ID: mdl-38731436

RESUMO

In our research, we explored a natural substance called Oxymatrine, found in a traditional Chinese medicinal plant, to fight against a common bird flu virus known as H9N2. This virus not only affects birds but can also pose a threat to human health. We focused on how this natural compound can help in stopping the virus from spreading in cells that line the lungs of birds and potentially humans. Our findings show that Oxymatrine can both directly block the virus and boost the body's immune response against it. This dual-action mechanism is particularly interesting because it indicates that Oxymatrine might be a useful tool in developing new ways to prevent and treat this type of bird flu. Understanding how Oxymatrine works against the H9N2 virus could lead to safer and more natural ways to combat viral infections in animals and humans, contributing to the health and well-being of society. The H9N2 Avian Influenza Virus (AIV) is a persistent health threat because of its rapid mutation rate and the limited efficacy of vaccines, underscoring the urgent need for innovative therapies. This study investigated the H9N2 AIV antiviral properties of Oxymatrine (OMT), a compound derived from traditional Chinese medicine, particularly focusing on its interaction with pulmonary microvascular endothelial cells (PMVECs). Employing an array of in vitro assays, including 50% tissue culture infectious dose, Cell Counting Kit-8, reverse transcription-quantitative polymerase chain reaction, enzyme-linked immunosorbent assay, and Western blot, we systematically elucidated the multifaceted effects of OMT. OMT dose-dependently inhibited critical antiviral proteins (PKR and Mx1) and modulated the expression of type I interferons and key cytokines (IFN-α, IFN-ß, IL-6, and TNF-α), thereby affecting TLR3 signaling and its downstream elements (NF-κB and IRF-3). OMT's antiviral efficacy extended beyond TLR3-mediated responses, suggesting its potential as a versatile antiviral agent. This study not only contributes to the growing body of research on the use of natural compounds as antiviral agents but also underscores the importance of further investigating the broader application of OMT for combating viral infections.


Assuntos
Antivirais , Vírus da Influenza A Subtipo H9N2 , Influenza Aviária , Matrinas , Transdução de Sinais , Receptor 3 Toll-Like , Animais , Cães , Humanos , Antivirais/farmacologia , Vírus da Influenza A Subtipo H9N2/efeitos dos fármacos , Influenza Aviária/tratamento farmacológico , Influenza Aviária/imunologia , Células Madin Darby de Rim Canino , Transdução de Sinais/efeitos dos fármacos , Receptor 3 Toll-Like/metabolismo
19.
Poult Sci ; 103(7): 103800, 2024 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-38743966

RESUMO

The combination of inflammatory factors resulting from an influenza A virus infection is one of the main causes of death in host animals. Studies have shown that guinea pig guanosine monophosphate binding protein 1 (guanylate-binding protein 1, gGBP1) can downregulate cytokine production induced by the influenza virus. Therefore, exploring the innate immune defense mechanism of GBP1 in the process of H5N1 influenza virus infection has important implications for understanding the pathogenic mechanism, disease prevention, and the control of influenza A virus infections. We found that, in addition to inhibiting the early replication of influenza virus, gGBP1 also inhibited the production of CCL2 and CXCL10 cytokines induced by the influenza virus as well as the proliferation of mononuclear macrophages induced by these cytokines. These findings further confirmed that gGBP1 inhibited the production of cytokines through its GTPase activity and cell proliferation through its C-terminal α-helix structure. This study revealed the effect of gGBP1 on the production of cellular inflammatory factors during influenza virus infection and determined the key amino acid residues that assist in the inhibitory processes mediated by gGBP1.


Assuntos
Proteínas de Ligação ao GTP , Virus da Influenza A Subtipo H5N1 , Animais , Virus da Influenza A Subtipo H5N1/fisiologia , Virus da Influenza A Subtipo H5N1/imunologia , Proteínas de Ligação ao GTP/genética , Proteínas de Ligação ao GTP/metabolismo , Proteínas de Ligação ao GTP/imunologia , Citocinas/metabolismo , Citocinas/genética , Influenza Aviária/virologia , Influenza Aviária/imunologia , GTP Fosfo-Hidrolases/metabolismo , GTP Fosfo-Hidrolases/genética , Imunidade Inata , Doenças das Aves Domésticas/virologia , Doenças das Aves Domésticas/imunologia , Galinhas
20.
Front Immunol ; 15: 1352022, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38698856

RESUMO

The complement system is an innate immune mechanism against microbial infections. It involves a cascade of effector molecules that is activated via classical, lectin and alternative pathways. Consequently, many pathogens bind to or incorporate in their structures host negative regulators of the complement pathways as an evasion mechanism. Factor H (FH) is a negative regulator of the complement alternative pathway that protects "self" cells of the host from non-specific complement attack. FH has been shown to bind viruses including human influenza A viruses (IAVs). In addition to its involvement in the regulation of complement activation, FH has also been shown to perform a range of functions on its own including its direct interaction with pathogens. Here, we show that human FH can bind directly to IAVs of both human and avian origin, and the interaction is mediated via the IAV surface glycoprotein haemagglutinin (HA). HA bound to common pathogen binding footprints on the FH structure, complement control protein modules, CCP 5-7 and CCP 15-20. The FH binding to H1 and H3 showed that the interaction overlapped with the receptor binding site of both HAs, but the footprint was more extensive for the H3 HA than the H1 HA. The HA - FH interaction impeded the initial entry of H1N1 and H3N2 IAV strains but its impact on viral multicycle replication in human lung cells was strain-specific. The H3N2 virus binding to cells was significantly inhibited by preincubation with FH, whereas there was no alteration in replicative rate and progeny virus release for human H1N1, or avian H9N2 and H5N3 IAV strains. We have mapped the interaction between FH and IAV, the in vivo significance of which for the virus or host is yet to be elucidated.


Assuntos
Fator H do Complemento , Glicoproteínas de Hemaglutininação de Vírus da Influenza , Vírus da Influenza A , Influenza Humana , Ligação Proteica , Humanos , Fator H do Complemento/metabolismo , Fator H do Complemento/imunologia , Animais , Influenza Humana/imunologia , Influenza Humana/virologia , Influenza Humana/metabolismo , Vírus da Influenza A/imunologia , Vírus da Influenza A/fisiologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/metabolismo , Glicoproteínas de Hemaglutininação de Vírus da Influenza/imunologia , Sítios de Ligação , Influenza Aviária/virologia , Influenza Aviária/imunologia , Influenza Aviária/metabolismo , Aves/virologia , Interações Hospedeiro-Patógeno/imunologia , Vírus da Influenza A Subtipo H3N2/imunologia , Vírus da Influenza A Subtipo H9N2/imunologia
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