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Research Article

QX-type infectious bronchitis virus infection in roosters can seriously injure the reproductive system and cause sex hormone secretion disorder

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Article: 2185380 | Received 20 Dec 2022, Accepted 15 Feb 2023, Published online: 08 Mar 2023

References

  • Cook JK, Jackwood M, Jones RC. The long view: 40 years of infectious bronchitis research. Avian Pathol. 2012;41(3):239–12.
  • Cavanagh D. Coronavirus avian infectious bronchitis virus. Vet Res. 2007;38(2):281–297.
  • Zhang X, Liao K, Chen S, et al. Evaluation of the reproductive system development and egg-laying performance of hens infected with TW I-type infectious bronchitis virus. Vet Res. 2020;51(1):95.
  • Kong L, You R, Zhang D, et al. Infectious bronchitis virus infection increases pathogenicity of H9N2 avian influenza virus by inducing severe inflammatory response. Front Vet Sci. 2021;8:824179.
  • Sid H, Benachour K, Rautenschlein S. Co-infection with multiple respiratory pathogens contributes to increased mortality rates in Algerian poultry flocks. Avian Dis. 2015;59(3):440–446.
  • Liu S, Kong X. A new genotype of nephropathogenic infectious bronchitis virus circulating in vaccinated and non-vaccinated flocks in China. Avian Pathol. 2004;33(3):321–327.
  • Valastro V, Holmes EC, Britton P, et al. S1 gene-based phylogeny of infectious bronchitis virus: an attempt to harmonize virus classification. Infect Genet Evol. 2016;39:349–364.
  • Bande F, Arshad SS, Omar AR, et al. Global distributions and strain diversity of avian infectious bronchitis virus: a review. Anim Health Res Rev. 2017;18(1):70–83.
  • Fan W, Chen J, Zhang Y, et al. Phylogenetic and spatiotemporal analyses of the complete genome sequences of avian coronavirus infectious bronchitis virus in China during 1985-2020: revealing coexistence of multiple transmission chains and the origin of LX4-type virus. Front Microbiol. 2022;13:693196.
  • Cheng J, Huo C, Zhao J, et al. Pathogenicity differences between QX-like and mass-type infectious bronchitis viruses. Vet Microbiol. 2018;213:129–135.
  • Li S, Du L, Xia J, et al. Antigenic and pathogenic characteristics of QX-type avian infectious bronchitis virus strains isolated in Southwestern China. Viruses. 2019;11(12):1154.
  • Zhong Q, Hu YX, Jin JH, et al. Pathogenicity of virulent infectious bronchitis virus isolate YN on hen ovary and oviduct. Vet Microbiol. 2016;193:100–105.
  • Benyeda Z, Mato T, Suveges T, et al. Comparison of the pathogenicity of QX-like, M41 and 793/B infectious bronchitis strains from different pathological conditions. Avian Pathol. 2009;38(6):449–456.
  • de Wit JJ, Nieuwenhuisen-van Wilgen J, Hoogkamer A, et al. Induction of cystic oviducts and protection against early challenge with infectious bronchitis virus serotype D388 (genotype QX) by maternally derived antibodies and by early vaccination. Avian Pathol. 2011;40(5):463–471.
  • Zhang X, Yan K, Zhang C, et al. Pathogenicity comparison between QX-type and mass-type infectious bronchitis virus to different segments of the oviducts in laying phase. Virol J. 2022;19(1):62.
  • Gallardo RA, da Silva AP, Gilbert R, et al. Testicular atrophy and epididymitis-orchitis associated with infectious bronchitis virus in broiler breeder roosters. Avian Dis. 2022;66(1):112–118.
  • Boltz D, Zimmerman C, Nakai M, et al. Epididymal stone formation and decreased sperm production in roosters vaccinated with a killed strain of avian infectious bronchitis virus. Avian Dis. 2006;50(4):594–598.
  • Gallardo RA, Hoerr FJ, Berry WD, et al. Infectious bronchitis virus in testicles and venereal transmission. Avian Dis. 2011;55(2):255–258.
  • Sansone A, Mollaioli D, Ciocca G, et al. Addressing male sexual and reproductive health in the wake of COVID-19 outbreak. J Endocrinol Invest. 2021;44(2):223–231.
  • Wang N, Qin L, Ma L, et al. Effect of severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) on reproductive system. Stem Cell Res. 2021;52:102189.
  • Matumoto M. A note on some points of calculation method of LD20 by Reed and Muench. Jpn J Exp Med. 1949;50(1–2):175–179.
  • Yu L, Zhang X, Wu T, et al. Avian infectious bronchitis virus disrupts the melanoma differentiation associated gene 5 (MDA5) signaling pathway by cleavage of the adaptor protein MAVS. BMC Vet Res. 2017;13(1):332.
  • Majumder S, Silbart L. Interaction of mycoplasma gallisepticum with chicken tracheal epithelial cells contributes to macrophage chemotaxis and activation. Infect Immun. 2016;84(1):266–274.
  • Dusanic D, Bencina D, Oven I, et al. Mycoplasma synoviae induces upregulation of apoptotic genes, secretion of nitric oxide and appearance of an apoptotic phenotype in infected chicken chondrocytes. Vet Res. 2012;43(1):7.
  • Rehman ZU, Ren S, Yang B, et al. Newcastle disease virus induces testicular damage and disrupts steroidogenesis in specific pathogen free roosters. Vet Res. 2020;51(1):84.
  • Livak KJ, Schmittgen TD. Analysis of relative gene expression data using real-time quantitative PCR and the 2−ΔΔCT method. Methods. 2001;25(4):402–408.
  • Avital-Cohen N, Heiblum R, Argov-Argaman N, et al. Age-related changes in gonadal and serotonergic axes of broiler breeder roosters. Domest Anim Endocrinol. 2013;44(3):145–150.
  • Crespo R, Shivaprasad HL. Decrease of fertility in a broiler breeder flock due to testicular atrophy. Avian Dis. 2010;54(1):142–145.
  • Mogensen TH. Pathogen recognition and inflammatory signaling in innate immune defenses. Clin Microbiol Rev. 2009;22(2):240–273. Table of Contents. DOI:10.1128/CMR.00046-08.
  • Foster RA. Chapter 19, male reproductive system. In: Zachary J, editor. Pathologic basis of veterinary disease. 6th ed. St. Louis (MO): Elsevier; 2017. p. 1198.
  • Rubin S, Eckhaus M, Rennick L, et al. Molecular biology, pathogenesis and pathology of mumps virus. J Pathol. 2015;235(2):242–252.
  • Hoerr F. The pathology of infectious bronchitis. Avian Dis. 2021;65(4):600–611.
  • Yan S, Liu X, Zhao J, et al. Analysis of antigenicity and pathogenicity reveals major differences among QX-like infectious bronchitis viruses and other serotypes. Vet Microbiol. 2017;203:167–173.
  • Sharma A, Jayasena CN, Dhillo WS. Regulation of the hypothalamic-pituitary-testicular axis: pathophysiology of hypogonadism. Endocrinol Metab Clin North Am. 2022;51(1):29–45.
  • Deviche P, Hurley LL, Fokidis HB. Avian Testicular Structure, Function, and Regulation. In: Norris D K Lopez, editors. Hormones and reproduction of vertebrates. Vol. 4. Burlington (MA): Academic Press; 2011. p. 27–70.
  • Foster RA. Chapter 19, male reproductive system. In: Zachary J, editor. Pathologic basis of veterinary disease. 6th ed. St. Louis (MO): Elsevier; 2017. p 1199.
  • Miller W, Strauss J. Molecular pathology and mechanism of action of the steroidogenic acute regulatory protein, StARProceedings of Xth international congress on hormonal steroids, Quebec, Canada, 17–21 June 1998. J Steroid Biochem Mol Biol. 1999;69(1–6):131–141.
  • Kater CE, Giorgi RB, Costa-Barbosa FA. Classic and current concepts in adrenal steroidogenesis: a reappraisal. Arch Endocrinol Metab. 2022;66(1):77–87.
  • Han X, Tian Y, Guan R, et al. Infectious bronchitis virus infection induces apoptosis during replication in chicken macrophage HD11 cells. Viruses. 2017;9(8):198.
  • Chhabra R, Kuchipudi SV, Chantrey J, et al. Pathogenicity and tissue tropism of infectious bronchitis virus is associated with elevated apoptosis and innate immune responses. Virology. 2016;488:232–241.
  • Foster RA. Chapter 19, male reproductive system. In: Zachary J, editor. Pathologic basis of veterinary disease. 6th ed. St. Louis (MO): Elsevier; 2017. p 1196.
  • Chu H, Shuai H, Hou Y, et al. Targeting highly pathogenic coronavirus-induced apoptosis reduces viral pathogenesis and disease severity. Sci Adv. 2021;7(25):eabf8577.