Duck STING Mediates Innate Immune Response Induced by H5N8 Subtype Avian Influenza Viruses
DOI:
https://doi.org/10.22456/1679-9216.145090Palavras-chave:
H5N8, AIV, ducks, STING, IFN-βResumo
Background: The H5N8 highly pathogenic avian influenza virus (HPAIV) poses a significant threat to global poultry and public health due to its high mortality rate and potential for cross-species transmission. As natural H5N8 hosts, Anatidae (e.g., ducks) drive transmission and evolution. STING, a key innate immunity regulator, activates IFN-β via signaling to combat infection. While STING's anti-AIV role is known, its mechanisms in ducks during H5N8 infection remain unclear. This study analyzes STING pathway dynamics in SPF ducks post-infection, revealing its core antiviral role in waterfowl. Findings support HPAIV control strategies.
Materials, Methods & Results: This study utilized sixty 4-week-old specific pathogen-free (SPF) ducks, randomly divided into H5N8-infected (n = 30) and PBS control (n = 30) groups. The experimental group was inoculated via intranasal and oropharyngeal routes with 106 EID50/0.2 mL of A/whooper swan/Henan/SMQ9/2020 (H5N8) viral suspension, while the control group received an equivalent volume of PBS. Euthanasia was performed at 0.25, 1, 2, 3, 5, 7, 10, and 14 days post-infection (dpi) [n = 3-4 per time point], with collection of lung, spleen, and rectal tissues. Clinical observations revealed mild respiratory symptoms in infected ducks, including coughing and nasal secretions. Two SPF ducks died at 3 dpi and 5 dpi. Necropsy demonstrated mucus accumulation in the trachea and pulmonary hemorrhages in the infected group. The control group exhibited no clinical symptoms or histopathological lesions throughout the experimental period. Absolute quantitative fluorescent PCR detected peak viral loads in tissues at 2-3 dpi, with pulmonary viral loads significantly exceeding those in other organs, followed by a gradual decline after 5 dpi. qRT-PCR revealed time-dependent differential changes in the expression of STING pathway immune factors (STING, TBK1, IRF7) as well as TLR7 and IL6. During the early stages of infection, the expression of these immune factors was significantly upregulated, peaking at 2-3 dpi, followed by a gradual decline in expression from 5 dpi onward. Notably, the expression trends of TBK1, IRF7, and IFN-β exhibited a striking similarity to that of STING. SPSS correlation analysis demonstrated a positive correlation between STING and IFN-β expression in the lungs, spleen, and rectum. These results indicate that STING regulates the expression of multiple immune factors and promotes IFN-β production, playing a critical antiviral role in SPF ducks during the early phase of H5N8 avian influenza virus infection.
Discussion: This study elucidates the pivotal role of the STING signaling pathway in coordinating the innate immune response of SPF ducks against H5N8 HPAIV. Our findings demonstrate that the expression of STING and associated immune factors peaked at 2-3 dpi before gradually declining from 5 dpi onward. The STING-mediated TBK1-IRF7 signaling axis was found to promote IFN-β production, as supported by significant positive correlations (SPSS analysis) between STING and IFN-β expression levels in the lung and spleen. These results suggest that enhancing STING activity or stabilizing its expression could augment host antiviral defenses, thereby curbing viral replication during early-stage infections. Collectively, our work establishes a molecular foundation for developing STING-targeted immunomodulatory strategies, such as novel vaccine adjuvants, to improve avian influenza control. This approach not only holds potential to mitigate economic losses in poultry industries but may also reduce zoonotic transmission risks.
Keywords: H5N8, AIV, ducks, STING, IFN-β.
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Adams S.C., Xing Z., Li J. & Cardona C.J. 2009. Immune-related gene expression in response to H11N9 low pathogenic avian influenza virus infection in chicken and Pekin duck peripheral blood mononuclear cells. Molecular Immunology. 46(8-9): 1744-1749. DOI: 10.1016/j.molimm.2009.01.025. DOI: https://doi.org/10.1016/j.molimm.2009.01.025
Aoshi T., Koyama S., Kobiyama K., Akira S. & Ishii K.J. 2011. Innate and adaptive immune responses to viral infection and vaccination.Current Opinion in Virology. 1(4): 226-232. DOI: 10.1016/j.coviro.2011.07.002. DOI: https://doi.org/10.1016/j.coviro.2011.07.002
Alqazlan N., Emam M., Nagy E., Bridle B., Sargolzaei M. & Sharif S. 2021. Transcriptomics of chicken cecal tonsils and intestine after infection with low pathogenic avian influenza virus H9N2. Scientific Reports. 11(1): 20462. DOI: 10.1038/s41598-021-99182-3. DOI: https://doi.org/10.1038/s41598-021-99182-3
Campbell L.K. & Magor K.E. 2020. Pattern Recognition Receptor Signaling and Innate Responses to Influenza A Viruses in the Mallard Duck, Compared to Humans and Chickens. Frontiers in Cellular and Infection Microbiology. 10: 209. DOI: 10.3389/fcimb.2020.00209. DOI: https://doi.org/10.3389/fcimb.2020.00209
Gao P., Ascano M., Wu Y., Barchet W., Gaffney B.L., Zillinger T., Serganov A.A., Liu Y., Jones R.A., Hartmann G., Tuschl T. & Patel D.J. 2013. Cyclic [G(2',5')pA(3',5')p] is the metazoan second messenger produced by DNA-activated cyclic GMP-AMP synthase. Cell. 153(5): 1094-1107. DOI: 10.1016/j.cell.2013.04.046. DOI: https://doi.org/10.1016/j.cell.2013.04.046
Ishikawa H. & Barber G.N. 2008. STING is an endoplasmic reticulum adaptor that facilitates innate immune signalling. Nature. 455(7213): 674-678. DOI: 10.1038/nature07317. DOI: https://doi.org/10.1038/nature07317
Livak K.J. & Schmittgen T.D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. Methods (San Diego, Calif.). 25(4): 402-408. DOI: 10.1006/meth.2001.1262. DOI: https://doi.org/10.1006/meth.2001.1262
Lio C.W.J., McDonald B., Takahashi M., Dhanwani R., Sharma N., Huang J., Pham E., Benedict C.A. & Sharma S. 2016. cGAS-STING Signaling Regulates Initial Innate Control of Cytomegalovirus Infection. Journal of Virology. 90(17): 7789-7797. DOI: 10.1128/Jvi.01040-16. DOI: https://doi.org/10.1128/JVI.01040-16
Li X., Lv X., Li Y., Xie L., Peng P., An Q., Fu T., Qin S., Cui Y., Zhang C., Qin R., Qu F., Zhao Z., Wang M., Xu Q., Li Y., Yang G., Chen G., Zhang J., Zheng H., Ma E., Zhou R., Zeng X., Wang Y., Hou Z., Wang Y., Chu D., Li Y. & Chai H. 2022. Emergence, prevalence, and evolution of H5N8 avian influenza viruses in central China, 2020. Emerging Microbes & Infections. 11(1): 73-82. DOI: 10.1080/22221751.2021.2011622. DOI: https://doi.org/10.1080/22221751.2021.2011622
Maughan M.N., Dougherty L.S., Preskenis L.A., Ladman B.S., Gelb Jr., Spackman E.V. & Keeler Jr. C.L. 2013. Transcriptional analysis of the innate immune response of ducks to different species-of-origin low pathogenic H7 avian influenza viruses. Virology Journal. 10: 94. DOI: 10.1186/1743-422X-10-94. DOI: https://doi.org/10.1186/1743-422X-10-94
Ma W., Huang G., Wang Z., Wang L. & Gao Q. 2023. IRF7: role and regulation in immunity and autoimmunity. Frontiers in Immunology. 14: 1236923. DOI: 10.3389/fimmu.2023.1236923. DOI: https://doi.org/10.3389/fimmu.2023.1236923
Rahman M.A., Belgrad J.P., Sayeed M.A., Abdullah M.S., Barua S., Chisty N.N., Mohsin M.A.S., Foysal M., Hossain M.E., Islam A., Akwar H. & Hoque M.A. 2022. Prevalence and risk factors of Avian Influenza Viruses among household ducks in Chattogram, Bangladesh. Veterinary Research Communications. 46(2): 471-480. DOI: 10.1007/s11259-021-09874-4. DOI: https://doi.org/10.1007/s11259-021-09874-4
Winslow S., Odqvist L., Diver S., Riise R., Abdillahi S., Wingren C., Lindmark H., Wellner A., Lundin S., Yrlid L., Ax E., Djukanovic R., Sridhar S., Higham A., Singh D., Southworth T., Brightling C.E., Olsson H.K. & Jevnikar Z. 2021. Multi-omics links IL-6 trans-signalling with neutrophil extracellular trap formation and Haemophilus infection in COPD. European Respiratory Journal. 58(4): 2003312. DOI: 10.1183/13993003.03312-2020. DOI: https://doi.org/10.1183/13993003.03312-2020
Zhang X.F., Wu J., Liu Q.J., Li X.H., Yang Y.Y., Wu L., Wu X.W., Zhao Y. & Ren J.A. 2023. RIPK3-MLKL necroptotic signalling amplifies STING pathway and exacerbates lethal sepsis. Clinical and Translational Medicine. 13(7): e1334. DOI: 10.1002/ctm2.1334. DOI: https://doi.org/10.1002/ctm2.1334
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