132
Views
3
CrossRef citations to date
0
Altmetric
Original Article

Immunization of BALB/c mice with pigeon IgY induces the production of anti-IgG autoantibodies

, &
Pages 336-345 | Received 05 Feb 2017, Accepted 17 Jun 2017, Published online: 12 Jul 2017

References

  • Ercolini AM, Miller SD. The role of infections in autoimmune disease. Clin Exp Immunol. 2009;155:1–15.
  • Newkirk MM. Rheumatoid factors: host resistance or autoimmunity? Clin. Immunol. 2002;104:1–13.
  • Edwards CJ, Cooper C. Early environmental factors and rheumatoid arthritis. Clin Exp Immunol. 2006;143:1–5.
  • Westwood OMR, Nelson PN, Hay FC. Rheumatoid factors: what's new? Rheumatology (Oxford). 2006;45:379–385.
  • Kannan K, Ortmann RA, Kimpel D. Animal models of rheumatoid arthritis and their relevance to human disease. Pathophysiology. 2005;12:167–181.
  • Miles SA, Conrad SM, Alves RG, et al. A role for IgG immune complexes during infection with the intracellular pathogen Leishmania. J Exp Med. 2005;201:747–754.
  • Corrigall VM, Panayi GS. Autoantigens and immune pathways in rheumatoid arthritis. Crit Rev Immunol. 2002;22:281–293.
  • Araiza MT, Aguilar-León DE, Retana VN, et al. IgM, IgG and IgA Rheumatoid factors in pigeon hypersensitivity pneumonitis. J Clin Lab Anal. 2007;21:315–321.
  • Mcsharry C, Anderson K, Boyd G. A review of antigen diversity causing lung disease among pigeon breeders. Clin Exp Allergy. 2000;30:1221–1229.
  • Baldwin CI, Todd A, Bourke SJ, et al. Pigeon fanciers’ lung: identification of disease-associated carbohydrate epitopes on pigeon intestinal mucin. Clin Exp Immunol. 1999;117:230–236.
  • Nademi Z, Todryk S, Baldwin C. Characteristics of antibody responses in Pigeon Fanciers' Lung. Mol Immunol. 2013;54:227–232.
  • Aguilar León DE, Novelo Retana V, Martínez-Cordero E. Anti-avian antibodies and rheumatoid factor in pigeon hypersensitivity pneumonitis. Clin. Exp. Allergy. 2003;33:226–232.
  • Todd A, Coan R, Allen A. Pigeon breeders' lung; IgG subclasses to pigeon intestinal mucin and IgA antigens. Clin Exp Immunol. 1993;92:494–499.
  • Suzuki N, Lee YC. Site-specific N-glycosylation of chicken serum IgG. Glycobiology. 2004;14:275–292.
  • Warr GW, Magor KE, Higgins DA. IgY: clues to the origins of modern antibodies. Immunol Today. 1995;16:392–398.
  • Carvalho JJ, Walter MA, Baermann-Stapel Y, et al. Non-invasive monitoring of immunization progress in mice via IgG from feces. In Vivo (Brooklyn). 2012;26:63–69.
  • Peters IR, Calvert EL, Hall EJ, et al. Measurement of immunoglobulin concentrations in the feces of healthy dogs. Clin Diagn Lab Immunol. 2004;11:841–848.
  • Neri P, Tokoro S, Kobayashi R, et al. Specific egg yolk immunoglobulin as a new preventive approach for Shiga-toxin-mediated diseases. PLoS One. 2011;6:e26526. doi:10.1371/journal.pone.0026526
  • Wing K, Sakaguchi S. Regulatory T cells exert checks and balances on self tolerance and autoimmunity. Nat Immunol. 2010;11:7–13.
  • Mellanby RJ, Thomas DC, Lamb J. Role of regulatory T-cells in autoimmunity. Clin Sci. 2009;116:639–649.
  • Girard M, Israël-Assayag E, Cormier Y. Impaired function of regulatory T-cells in hypersensitivity pneumonitis. Eur Respir J. 2011;37:632–639.
  • Yamasaki H, Ando M, Brazer W, et al. Polarized type 1 cytokine profile in bronchoalveolar lavage T cells of patients with hypersensitivity pneumonitis. J Immunol. 1999;163:3516–3523.
  • Hoff J. Methods of blood collection in the mouse. Lab Anim (NY). 2000;29:53.
  • Breslin WL, Strohacker K, Carpenter KC, et al. Mouse blood monocytes: standardizing their identification and analysis using CD115. J. Immunol Methods. 2013;390:1–8.
  • Wernhoff P, Olofsson P, Holmdahl R. The genetic control of rheumatoid factor production in a rat model of rheumatoid arthritis. Arthritis Rheum. 2003;48:3584–3596.
  • Israeli E, Agmon-Levin N, Blank M, et al. Adjuvants and autoimmunity. Lupus. 2009;18:1217–1225.
  • Díaz P, Malavé C, Zerpa N, et al. IgY pharmacokinetics in rabbits: implications for IgY use as antivenoms. Toxicon. 2014;90:124–133.
  • Sevcik C, Díaz P, D’Suze G. On the presence of antibodies against bovine, equine and poultry immunoglobulins in human IgG preparations, and its implications on antivenom production. Toxicon. 2008;51:10–16.
  • Alvarez A, Montero Y, Parrilla P, Malabe C, Zerpa N. Scorpion venoms: Poultry IgY alternatives to antivenom production. In: Gopalakrishnakone P, Possani LD, Schwartz EF, de la Vega RCR, editors. Scorpion venoms. Berlin: Springer Netherlands; 2015;7:p. 161–173. doi:10.1007/978-94-007-6404-0
  • White J. Venomous animals: clinical toxinology. EXS 2010;100:233–291.
  • Padgett KA, Selmi C, Kenny TP, et al. Phylogenetic and immunological definition of four lipoylated proteins from Novosphingobium aromaticivorans, implications for primary biliary cirrhosis. J Autoimmun. 2005;24:209–219.
  • Soulas P, Woods A, Jaulhac B, et al. Autoantigen, innate immunity, and T cells cooperate to break B cell tolerance during bacterial infection. J Clin Invest. 2005;115:2257–2267.
  • Sutton B, Corper A, Bonagura V, et al. The structure and origin of rheumatoid factors. Immunol Today. 2000;21:177–183.
  • Vanderlugt CL, Miller SD. Epitope spreading in immune-mediated diseases: implications for immunotherapy. Nat Rev Immunol. 2002;2:85–95.
  • Ehser J, Holdener M, Christen S, et al. Molecular mimicry rather than identity breaks T-cell tolerance in the CYP2D6 mouse model for human autoimmune hepatitis. J Autoimmun. 2013;42:39–49.
  • Rashid T, Ebringer A. Autoimmunity in rheumatic diseases is induced by microbial infections via crossreactivity or molecular mimicry. Autoimmune Dis. 2012;2012:539282. doi:10.1155/2012/539282
  • Gorton D, Sikder S, Williams NL, et al. Repeat exposure to group A streptococcal M protein exacerbates cardiac damage in a rat model of rheumatic heart disease. Autoimmunity. 2016;49:563–570.
  • Edwards JCW, Cambridge G, Abrahams VM. Do self-perpetuating B lymphocytes drive human autoimmune disease? Immunology. 1999;97:188–196.
  • Matsumoto A, Shikata K, Takeuchi F, et al. Autoantibody activity of IgG rheumatoid factor increases with decreasing levels of galactosylation and sialylation. J Biochem. 2000;128:621–628.
  • Tarkowski A, Czerkinsky C, Nilsson LA. Simultaneous induction of rheumatoid factor- and antigen-specific antibody-secreting cells during the secondary immune response in man. Clin Exp Immunol. 1985;61:379–387.
  • Symmons DP, Chakravarty K. Can immunisation trigger rheumatoid arthritis? Ann Rheum Dis. 1993;52:843–844.
  • Chen M, Aosai F, Mun HS, et al. Anti-HSP70 autoantibody formation by B-1 cells in Toxoplasma gondii-infected mice. Infect Immun. 2000;68:4893–4899.
  • Fiorino F, Pettini E, Pozzi G, et al. Prime-boost strategies in mucosal immunization affect local IgA production and the type of Th response. Front Immunol. 2013;4:1–8.
  • Kharb S, Charan S. Mucosal immunization provides better protection than subcutaneous immunization against Pasteurella multocida (B:2) in mice preimmunized with the outer membrane proteins. Vet Res Commun. 2011;35:457–461.
  • Waugh CA, Timms P, Andrew D, et al. Comparison of subcutaneous versus intranasal immunization of male koalas (Phascolarctos cinereus) for induction of mucosal and systemic immunity against Chlamydia pecorum. Vaccine. 2015;33:855–860.
  • Malmström V, Catrina AI, Klareskog L. The immunopathogenesis of seropositive rheumatoid arthritis: from triggering to targeting. Nat Rev Immunol. 2016;17:60–75.
  • Vallbracht I, Helmke K. Additional diagnostic and clinical value of anti-cyclic citrullinated peptide antibodies compared with rheumatoid factor isotypes in rheumatoid arthritis. Autoimmun. Rev. 2005;4:389–394.
  • Ludwig-Portugall I, Hamilton-Williams EE, Gottschalk C, et al. Cutting edge: CD25+ regulatory T cells prevent expansion and induce apoptosis of B cells specific for tissue autoantigens. J Immunol. 2008;181:4447–4451.
  • Liu Y, Liu A, Iikuni N, et al. Regulatory CD4+ T cells promote B cell anergy in murine lupus. J Immunol. 2014;192:4069–4073.
  • Iikuni N, Lourenco EV, Hahn BH, et al. Cutting edge: regulatory T cells directly suppress B cells in systemic lupus erythematosus. J Immunol. 2009;183:1518–1522.
  • van Herwijnen MJC, Wieten L, van der Zee R, et al. Regulatory T cells that recognize a ubiquitous stress-inducible self-antigen are long-lived suppressors of autoimmune arthritis. Proc Natl Acad Sci USA. 2012;109:14134–14139.
  • Rapetti L, Chavele K-M, Evans CM, et al. B cell resistance to Fas-mediated apoptosis contributes to their ineffective control by regulatory T cells in rheumatoid arthritis. Ann Rheum Dis. 2015;74:294–302.
  • Strainic MG, Shevach EM, An F, et al. Absence of signaling into CD4+ cells via C3aR and C5aR enables autoinductive TGF-β1 signaling and induction of Foxp3+ regulatory T cells. Nat Immunol. 2013;14:162–171.
  • Kwan W, van der Touw W, Paz-Artal E, et al. Signaling through C5a receptor and C3a receptor diminishes function of murine natural regulatory T cells. J Exp Med. 2013;210:257–268.
  • Rifkin IR, Leadbetter EA, Beaudette BC, et al. Immune complexes present in the sera of autoimmune mice activate rheumatoid factor B cells. J Immunol. 2000;165:1626–1633.
  • Zhou X, Bailey-Bucktrout SL, Jeker LT, et al. Instability of the transcription factor Foxp3 leads to the generation of pathogenic memory T cells in vivo. Nat Immunol. 2009;10:1000–1007.
  • Williams LM, Rudensky AY. Maintenance of the Foxp3-dependent developmental program in mature regulatory T cells requires continued expression of Foxp3. Nat Immunol. 2007;8:277–284.
  • Thien M, Phan TG, Gardam S, et al. Excess BAFF rescues self-reactive B cells from peripheral deletion and allows them to enter forbidden follicular and marginal zone niches. Immunity. 2004;20:785–798.
  • Varin MM, Le Pottier L, Youinou P, et al. B-cell tolerance breakdown in Sjögren's syndrome: focus on BAFF. Autoimmun Rev. 2010;9:604–608.
  • Clatworthy MR, Harford SK, Mathews RJ, et al. FcγRIIb inhibits immune complex-induced VEGF-A production and intranodal lymphangiogenesis. Proc Natl Acad Sci USA. 2014;111:17971–17976.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.