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Original Articles

Mouse Models of Food Allergy: How Well do They Simulate the Human Disorder?

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REFERENCES

  • Aalberse, R.C., Akkerdaas, J. and van Ree, R. (2001). Cross-reactivity of IgE antibodies to allergens. Allergy. 56(6):478–490.
  • Abonia, J.P. and Rothenberg, M.E. (2011). Eosinophilic esophagitis: rapidly advancing insights. Annu Rev Med. Jan 26. [Epub ahead of print]
  • Aldemir, H., Bars, R. and Herouet-Guicheney, C. (2009). Murine models for evaluating the allergenicity of novel proteins and foods. Regul. Toxicol. Pharmacol. 54(3 Suppl):S52–S57.
  • Amoli, M.M., Hand, S., Hajeer, A.H., Jones, K.P., Rolf, S., Sting, C., Davies, B.H. and Ollier, W.E. (2002). Polymorphism in the STAT6 gene encodes risk for nut allergy. Genes Immun. 3(4):220–224.
  • Beyer, K., Morrow, E., Li, X.M., Bardina, L., Bannon, G.A., Burks, A.W. and Sampson, H.A. (2001). Effects of cooking methods on peanut allergenicity. J. Allergy Clin. Immunol. 107(6):1077–1081.
  • Birmingham, N.P., Parvataneni, S., Hassan, H.M., Harkema, J., Samineni, S., Navuluri, L., Kelly, C.J. and Gangur, V. (2007). An adjuvant-free mouse model of tree nut allergy using hazelnut as a model tree nut. Int. Arch. Allergy Immunol. 144(3):203–210.
  • Birmingham, N., Gangur, V., Samineni, S., Navuluri, L. and Kelly, C. (2005). Hazelnut Allergy: evidence that hazelnut can directly elicit specific IgE antibody response via activating type 2 cytokines in mice. Int. Arch Allergy Immunol. 137(4):295–302.
  • Birmingham, N., Payankaulam, S., Thanesvorakul, S., Stefura, B., HayGlass, K. and Gangur, V. (2003). An ELISA-based method for measurement of food-specific IgE antibody in mouse serum: an alternative to the passive cutaneous anaphylaxis assay. J. Immunol. Methods. 275(1–2):89–98.
  • Birmingham, N., Thanesvorakul, S. and Gangur, V. (2002). Relative immunogenicity of commonly allergenic foods versus rarely allergenic and nonallergenic foods in mice. J. Food Prot. 65(12):1988–1991.
  • Bjorksten, B. (2005). Genetic and environmental risk factors for the development of food allergy. Curr. Opin. Allergy Clin. Immunol. 5(3):249–253.
  • Bousquet, J., Bjorksten, B., Bruijnzeel-Koomen, C.A., Huggett, A., Ortolani, C., Warner, J.O. and Smith, M. (1998). Scientific criteria and the selection of allergenic foods for product labelling. Allergy. 53(47 Suppl):3–21.
  • Bowman, C.C. and Selgrade, M.K. (2008a). Differences in allergenic potential of food extracts following oral exposure in mice reflect differences in digestibility: potential approaches to safety assessment. Toxicol. Sci. 102(1):100–109.
  • Bowman, C.C. and Selgrade, M.K. (2008b). Failure to induce oral tolerance in mice is predictive of dietary allergenic potency among foods with sensitizing capacity. Toxicol. Sci. 106(2):435–443.
  • Bowman, C.C. and Selgrade, M.K. (2009). Utility of rodent models for evaluating protein allergenicity. Regul. Toxicol. Pharmacol. 54(3 Suppl):S58–61.
  • Boyano-Martinez, T., Garcia-Ara, C., Diaz-Pena, J.M. and Martin-Esteban, M. (2002). Prediction of tolerance on the basis of quantification of egg white-specific IgE antibodies in children with egg allergy. J. Allergy Clin. Immunol. 110(2):304–309.
  • Boyce, J.A., Assa’ad, A., Burks, A.W., Jones, S.M., Sampson, H.A., Wood, R.A., Plaut, M., Cooper, S.F. and Fenton, M.J. (2011). Guidelines for the Diagnosis and Management of Food Allergy in the United States: summary of the NIAID-sponsored expert panel report. J. Am. Diet. Assoc. 111(1):17–27.
  • Brannan, J.D. and Turton, J.A. (2011). The inflammatory basis of exercise-induced bronchoconstriction. Phys. Sportsmed. 38(4):67–73.
  • Branum, A.M. and Lukacs, S.L. (2009). Food allergy among children in the United States. Pediatrics. 124(6):1549–1555.
  • Buchanan, B.B. and Frick, O.L. (2002). The dog as a model for food allergy. Ann. N Y Acad. Sci. 964:173–183.
  • Bush, R.K. and Hefle, S.L. (1996). Food allergens. Crit. Rev. Food Sci. Nutr. 36(Suppl):S119–S163.
  • Callard, R.E. and Harper, J.I. (2007). The skin barrier, atopic dermatitis and allergy: a role for Langerhans cells? Trends Immunol. 28(7):294–298.
  • Capobianco, F., Butteroni, C., Barletta, B., Corinti, S., Afferni, C., Tinghino, R., Boirivant, M. and Di Felice, G. (2008). Oral sensitization with shrimp tropomyosin induces in mice allergen-specific IgE, T cell response and systemic anaphylactic reactions. Int. Immunol. 20(8):1077–1086.
  • CFIA. (2011). http://active.inspection.gc.ca/eng/util/aze.asp?sid=39.
  • Chehade, M. and Mayer, L. (2005). Oral tolerance and its relation to food hypersensitivities. J. Allergy Clin. Immunol. 115(1):3–12; quiz 13.
  • Chen, X.W., Lau, K.W., Yang, F., Sun, S,S. and Fung, M.C. (2011). An adjuvant free mouse model of oral allergenic sensitization to rice seeds protein. BMC Gastroenterol. 11:62.
  • Cochrane, S., Beyer, K., Clausen, M., Wjst, M., Hiller, R., Nicoletti, C., Szepfalusi, Z., Savelkoul, H., Breiteneder, H., Manios, Y., Crittenden, R. and Burney, P. (2009). Factors influencing the incidence and prevalence of food allergy. Allergy. 64(9):1246–1255.
  • Cohen, B.L., Noone, S., Munoz-Furlong, A. and Sicherer, S.H. (2004). Development of a questionnaire to measure quality of life in families with a child with food allergy. J. Allergy Clin. Immunol. 114(5):1159–1163.
  • Crittenden, R.G. and Bennett, L.E. (2005). Cow's milk allergy: a complex disorder. J. Am. Coll. Nutr. 24(6 Suppl):582S–591S.
  • Dahl, D. (2006). Restaurant Industry May Face a Spate of Food Allergy Suits. Lawyers, USA.
  • De Filippo, C., Cavalieri, D., Di Paola, M., Ramazzotti, M., Poullet, J.B., Massart, S., Collini, S., Pieraccini, G. and Lionetti, P. (2010). Impact of diet in shaping gut microbiota revealed by a comparative study in children from Europe and rural Africa. Proc. Natl. Acad. Sci. U S A. 107(33):14691–14696.
  • Dearman, R.J. and Kimber, I. (2005). Characterisation of immune responses to food allergens in mice. Proc. Nutr. Soc. 64(4):426–433.
  • Dearman, R.J. and Kimber, I. (2007). A mouse model for food allergy using intraperitoneal sensitization. Methods. 41(1):91–98.
  • Dearman, R.J. and Kimber, I. (2009). Animal models of protein allergenicity: potential benefits, pitfalls and challenges. Clin. Exp. Allergy. 39(4):458–468.
  • Dearman, R.J., Caddick, H., Stone, S., Basketter, D.A. and Kimber, I. (2001). Characterization of antibody responses induced in rodents by exposure to food proteins: influence of route of exposure. Toxicology. 167(3):217–231.
  • Dearman, R.J., Caddick, H., Stone, S., Kenna, J.G., Basketter, D.A. and Kimber, I. (2002). Immunogenic properties of rapidly digested food proteins following gavage exposure of mice: a comparison of ovalbumin with a potato acid phosphatase preparation. Food Chem. Toxicol. 40(5):625–633.
  • Dearman, R.J., Skinner, R.A., Herouet, C., Labay, K., Debruyne, E. and Kimber, I. (2003a). Induction of IgE antibody responses by protein allergens: inter-laboratory comparisons. Food Chem. Toxicol. 41(11):1509–1516.
  • Dearman, R.J., Stone, S., Caddick, H.T., Basketter, D.A. and Kimber, I. (2003b). Evaluation of protein allergenic potential in mice: dose-response analyses. Clin. Exp. Allergy. 33(11):1586–1594.
  • Decker, W.W., Campbell, R.L., Manivannan, V., Luke, A., St Sauver, J.L., Weaver, A., Bellolio, M.F., Bergstralh, E.J., Stead, L.G. and Li, J.T. (2008). The etiology and incidence of anaphylaxis in Rochester, Minnesota: a report from the Rochester Epidemiology Project. J. Allergy Clin. Immunol. 122(6):1161–1165.
  • Donovan, G.R., Manolios, N., Weiner, J.M., Grennan, D., Huang, Q., Dunckley, H. and Baldo, B.A. (1996). A family study of allergy: segregation with HLA but not with T-cell receptor genes. J. Allergy Clin. Immunol. 97(2):712–713.
  • Dreskin, S.C. (2006). Do HLA genes play a role in the genetics of peanut allergy? Ann. Allergy Asthma Immunol. 96(6):766–768.
  • Droste, J., Vermeire, P., Van Sprundel, M., Bulat, P., Braeckman, L., Myny, K. and Vanhoorne, M. (2005). Occupational exposure among bakery workers: impact on the occurrence of work-related symptoms as compared with allergic characteristics. J. Occup. Environ. Med. 47(5):458–465.
  • Du Toit, G., Katz, Y., Sasieni, P., Mesher, D., Maleki, S.J., Fisher, H.R., Fox, A.T., Turcanu, V., Amir, T., Zadik-Mnuhin, G., Cohen, A., Livne, I. and Lack, G. (2008). Early consumption of peanuts in infancy is associated with a low prevalence of peanut allergy. J. Allergy Clin. Immunol. 122(5):984–991.
  • DunnGalvin, A., Hourihane, J.O., Frewer, L., Knibb, R.C., Oude Elberink, J.N. and Klinge, I. (2006). Incorporating a gender dimension in food allergy research: a review. Allergy. 61(11):1336–1343.
  • EFSA. (2004). http://www.efsa.europa.eu/en/science/nda/nda_opinions/food_allergy/341.html
  • EPA, U.S (2008). http://www.epa.gov/oppbppd1/biopesticides/pips/starlink_corn.htm.
  • Finkelman, F.D.(2007). Anaphylaxis: lessons from mouse models. J. Allergy Clin. Immunol. 120(3):506–515; quiz 516-507.
  • Fischer, R., McGhee, J.R., Vu, H.L., Atkinson, T.P., Jackson, R.J. ,Tome, D. and Boyaka, P.N. (2005). Oral and nasal sensitization promote distinct immune responses and lung reactivity in a mouse model of peanut allergy. Am. J. Pathol. 167(6):1621–1630.
  • Fleischer, D.M., Conover-Walker, M.K., Matsui, E.C. and Wood, R.A. (2005). The natural history of tree nut allergy. J. Allergy Clin. Immunol. 116(5):1087–1093.
  • Fox, M., Voordouw, J., Mugford, M., Cornelisse, J., Antonides, G. and Frewer, L. (2009). Social and economic costs of food allergies in Europe: Development of a questionnaire to measure costs and health utility. Health Serv. Res. 44(5 Pt 1):1662–1678.
  • Frick, O.L., Teuber, S.S., Buchanan, B.B., Morigasaki, S. and Umetsu, D.T. (2005). Allergen immunotherapy with heat-killed Listeria monocytogenes alleviates peanut and food-induced anaphylaxis in dogs. Allergy. 60(2):243–250.
  • Ganeshan, K., Neilsen, C.V., Hadsaitong, A., Schleimer, R.P., Luo, X. and Bryce, P.J. (2009). Impairing oral tolerance promotes allergy and anaphylaxis: a new murine food allergy model. J. Allergy Clin. Immunol. 123(1):231–238 e234.
  • Garside, P. and Mowat, A.M. (2001). Oral tolerance. Semin Immunol. 13(3):177–185.
  • Gonipeta, B., Parvataneni, S., Paruchuri, P. and Gangur, V. (2010). Long-term characteristics of hazelnut allergy in an adjuvant-free mouse model. Int. Arch Allergy Immunol. 152(3):219–225.
  • Gonipeta, B., Parvataneni, S. ,Tempelman, R.J. and Gangur, V. (2009). An adjuvant-free mouse model to evaluate the allergenicity of milk whey protein. J. Dairy Sci. 92(10):4738–4744.
  • Greer, F.R., Sicherer, S.H. and Burks, A.W. (2008). Effects of early nutritional interventions on the development of atopic disease in infants and children: the role of maternal dietary restriction, breastfeeding, timing of introduction of complementary foods, and hydrolyzed formulas. Pediatrics. 121(1):183–191.
  • Grob, M., Reindl, J., Vieths, S., Wuthrich, B. and Ballmer-Weber, B.K. (2002). Heterogeneity of banana allergy: characterization of allergens in banana-allergic patients. Ann. Allergy Asthma Immunol. 89(5):513–516.
  • Gupta, R.S., Springston, E.E., Warrier, M.R., Smith, B., Kumar, R., Pongracic, J. and Holl, J.L. (2011). The prevalence, severity, and distribution of childhood food allergy in the United States. Pediatrics. 128(1):e9–e17.
  • Hadley, C. (2006). Food allergies on the rise? Determining the prevalence of food allergies, and how quickly it is increasing, is the first step in tackling the problem. EMBO Rep. 7(11):1080–1083.
  • Hansen, K.S., Ballmer-Weber, B.K., Luttkopf, D., Skov, P.S., Wuthrich, B., Bindslev-Jensen, C., Vieths, S. and Poulsen, L.K. (2003). Roasted hazelnuts–allergenic activity evaluated by double-blind, placebo-controlled food challenge. Allergy. 58(2):132–138.
  • Hefle, S.L., Nordlee, J.A. and Taylor, S.L. (1996). Allergenic foods. Crit. Rev. Food Sci. Nutr. 36(Suppl):S69–89.
  • Helm, R.M., Ermel, R.W. and Frick, O.L. (2003). Nonmurine animal models of food allergy. Environ. Health Perspect. 111(2):239–244.
  • Hensel, P. (2011). Nutrition and skin diseases in veterinary medicine. Clin. Dermatol. 28(6):686–693.
  • Hommel, K.A., Franciosi, J.P., Hente, E.A., Ahrens, A. and Rothenberg, M.E. (2011). Treatment Adherence in Pediatric Eosinophilic Gastrointestinal Disorders. J Pediatr Psychol. Nov 10. [Epub ahead of print]
  • Hourihane, J.O., Kilburn, S.A., Dean, P. and Warner, J.O. (1997). Clinical characteristics of peanut allergy. Clin. Exp. Allergy. 27(6):634–639.
  • Hourihane, J.O., Smith, P.K. and Strobel, S. (2002). Food allergy in children. Indian J. Pediatr. 69(1):61–67.
  • Hudson, T.J. (2006). Skin barrier function and allergic risk. Nat. Genet. 38(4):399–400.
  • Jonsson, F., Mancardi, D.A., Kita, Y., Karasuyama, H., Iannascoli, B., Van Rooijen, N., Shimizu, T., Daeron, M. and Bruhns, P. (2011). Mouse and human neutrophils induce anaphylaxis. J. Clin. Invest. 121(4):1484–1496.
  • Kagan, R.S. (2003). Food allergy: an overview. Environ Health Perspect. 111(2):223–225.
  • Keet, C.A., Matsui, E.C., Dhillon, G., Lenehan, P., Paterakis, M. and Wood, R.A. (2009). The natural history of wheat allergy. Ann. Allergy Asthma Immunol. 102(5):410–415.
  • Kelly, C. and Gangur, V. (2009). Sex Disparity in Food Allergy: Evidence from the PubMed Database. J. Allergy (Cairo) 2009:159845.
  • Khodoun, M.V., Strait, R., Armstrong, L., Yanase, N. and Finkelman, F.D. (2011). Identification of markers that distinguish IgE- from IgG-mediated anaphylaxis. Proc. Natl. Acad. Sci. U S A. 108(30):12413–12418.
  • Kimber, I. and Dearman, R.J. (2002). Approaches to assessment of the allergenic potential of novel proteins in food from genetically modified crops. Toxicol. Sci. 68(1):4–8.
  • Kimber, I., Betts, C.J. and Dearman, R.J. (2003a). Assessment of the allergenic potential of proteins. Toxicol. Lett. 140–141:297–302.
  • Kimber, I., Dearman, R.J., Penninks, A.H., Knippels, L.M., Buchanan, R.B., Hammerberg, B., Jackson, H.A. and Helm, R.M. (2003b). Assessment of protein allergenicity on the basis of immune reactivity: animal models. Environ. Health Perspect. 111(8):1125–1130.
  • Kimber, I., Lumley, C.E. and Metcalfe, D.D. (1997). Allergenicity of proteins. Hum. Exp. Toxicol. 16(9):516–518.
  • Kimber, I., Stone, S. and Dearman, R.J. (2003c). Assessment of the inherent allergenic potential of proteins in mice. Environ. Health Perspect. 111(2):227–231.
  • Knippels, L.M. and Penninks, A.H. (2003). Assessment of the allergic potential of food protein extracts and proteins on oral application using the brown Norway rat model. Environ. Health Perspect. 111(2):233–238.
  • Knippels, L.M., Penninks, A.H. and Houben, G.F. (1998a). Continued expression of anti-soy protein antibodies in rats bred on a soy protein-free diet for one generation: the importance of dietary control in oral sensitization research. J. Allergy Clin. Immunol. 101(6 Pt 1):815–820.
  • Knippels, L.M., Penninks, A.H., Spanhaak, S. and Houben, G.F. (1998b). Oral sensitization to food proteins: a Brown Norway rat model. Clin. Exp. Allergy. 28(3):368–375.
  • Kroghsbo, S., Christensen, H.R. and Frokiaer, H. (2003). Experimental parameters differentially affect the humoral response of the cholera-toxin-based murine model of food allergy. Int. Arch Allergy Immunol. 131(4):256–263.
  • Lack, G. and Penagos, M. (2011). Early feeding practices and development of food allergies. Nestle Nutr. Workshop Ser. Pediatr. Program. 68:169–186.
  • Lack, G., Fox, D., Northstone, K. and Golding, J. (2003). Factors associated with the development of peanut allergy in childhood. N. Engl. J. Med. 348(11):977–985.
  • Ladics, G.S. (2008). Current codex guidelines for assessment of potential protein allergenicity. Food Chem. Toxicol. 46(Suppl 10):S20–S23.
  • Ladics, G.S. and Selgrade, M.K. (2009). Identifying food proteins with allergenic potential: evolution of approaches to safety assessment and research to provide additional tools. Regul. Toxicol. Pharmacol. 54(3 Suppl):S2–6.
  • Ladics, G.S., Holsapple, M.P., Astwood, J.D., Kimber, I., Knippels, L.M., Helm, R.M. and Dong, W. (2003). Workshop overview: approaches to the assessment of the allergenic potential of food from genetically modified crops. Toxicol. Sci. 73(1):8–16.
  • Ladics, G.S., Knippels, L.M., Penninks, A.H., Bannon, G.A., Goodman, R.E. and Herouet-Guicheney, C. (2010). Review of animal models designed to predict the potential allergenicity of novel proteins in genetically modified crops. Regul. Toxicol. Pharmacol. 56(2):212–224.
  • Lehrer, S.B., Ayuso, R. and Reese, G. (2002). Current understanding of food allergens. Ann. NY Acad. Sci. 964:69–85.
  • Leung, P.S., Lee, Y.S., Tang, C.Y., Kung, W.Y., Chuang, Y.H., Chiang, B.L., Fung, M.C. and Chu, K.H. (2008). Induction of shrimp tropomyosin-specific hypersensitivity in mice. Int. Arch Allergy Immunol. 147(4):305–314.
  • Li, X.M., Kleiner, G., Huang, C.K., Lee, S.Y., Schofield, B., Soter, N.A. and Sampson, H.A. (2001). Murine model of atopic dermatitis associated with food hypersensitivity. J. Allergy Clin. Immunol. 107(4):693–702.
  • Li, X.M., Schofield, B.H., Huang, C.K., Kleiner, G.I. and Sampson, H.A. (1999b). A murine model of IgE-mediated cow's milk hypersensitivity. J. Allergy Clin. Immunol. 103(2 Pt 1):206–214.
  • Li, X.M., Serebrisky, D., Lee, S.Y., Huang, C.K., Bardina, L., Schofield, B.H., Stanley, J.S., Burks, A.W., Bannon, G.A. and Sampson, H.A. (2000). A murine model of peanut anaphylaxis: T- and B-cell responses to a major peanut allergen mimic human responses. J. Allergy Clin. Immunol. 106(1 Pt 1):150–158.
  • Li, X., Huang, C.K., Schofield, B.H., Burks, A.W., Bannon, G.A., Kim, K.H., Huang, S.K. and Sampson, H.A. (1999a). Strain-dependent induction of allergic sensitization caused by peanut allergen DNA immunization in mice. J. Immunol. 162(5):3045–3052.
  • Liu, X., Feng, J., Xu, Z.R., Wang, Y.Z. and Liu, J.X. (2008). Oral allergy syndrome and anaphylactic reactions in BALB/c mice caused by soybean glycinin and beta-conglycinin. Clin. Exp. Allergy. 38(2):350–356.
  • Lowell, C.A. (2011). Neutrophils give us a shock. J. Clin. Invest. 121(4):1260–1263.
  • Melgert, B.N., Postma, D.S., Kuipers, I., Geerlings, M., Luinge, M.A., van der Strate, B.W., Kerstjens, H.A., Timens, W. and Hylkema, M.N. (2005). Female mice are more susceptible to the development of allergic airway inflammation than male mice. Clin. Exp. Allergy. 35(11):1496–1503.
  • Metcalfe, D.D., AStwood, J.D., Townsend, R., Sampson, H.A., Taylor, S.L. and Fuchs, R.L. (1996). Assessment of the allergenic potential of foods derived from genetically engineered crop plants. Crit. Rev. Food Sci. Nutr. 36(Suppl):S165–186.
  • Metcalfe, D.D. (2003). Introduction: what are the issues in addressing the allergenic potential of genetically modified foods? Environ. Health Perspect. 111(8):1110–1113.
  • Mondoulet, L., Dioszeghy, V., Vanoirbeek, J.A., Nemery, B., Dupont, C. and Benhamou, P.H. (2011). Epicutaneous immunotherapy using a new epicutaneous delivery system in mice sensitized to peanuts. Int. Arch Allergy Immunol. 154(4):299–309.
  • Morafo, V., Srivastava, K., Huang, C.K., Kleiner, G., Lee, S.Y., Sampson, H.A. and Li, A.M. (2003). Genetic susceptibility to food allergy is linked to differential TH2-TH1 responses in C3H/HeJ and BALB/c mice. J. Allergy Clin. Immunol. 111(5):1122–1128.
  • Morisset, M., Moneret-Vautrin, D.A., Kanny, G., Guenard, L., Beaudouin, E., Flabbee, J. and Hatahet, R. (2003). Thresholds of clinical reactivity to milk, egg, peanut and sesame in immunoglobulin E-dependent allergies: evaluation by double-blind or single-blind placebo-controlled oral challenges. Clin. Exp. Allergy. 33(8):1046–1051.
  • Morita, E., Kunie, K. and Matsuo, H. (2007). Food-dependent exercise-induced anaphylaxis. J. Dermatol. Sci. 47(2):109–117.
  • Murphy, K., Travers, P. and Walport, M. (2008). The Adaptive Immune Response: The Humoral Immune Response. in Janeway's Immuno Biology. 7 ed. Garland Publishing.
  • Navuluri, L., Parvataneni, S., Hassan, H., Birmingham, N.P., Kelly, C. and Gangur, V. (2006). Allergic and anaphylactic response to sesame seeds in mice: identification of Ses i 3 and basic subunit of 11s globulins as allergens. Int. Arch Allergy Immunol. 140(3):270–276.
  • Nowak-Wegrzyn, A. and Sampson, H.A. (2011). Future therapies for food allergies. J. Allergy Clin. Immunol. 127(3):558–573; quiz 574-555.
  • Ortolani, C., Ballmer-Weber, B.K., Hansen, K.S., Ispano, M., Wuthrich, B., Bindslev-Jensen, C., Ansaloni, R., Vannucci, L., Pravettoni, V., Scibilia, J., Poulsen, L.K. and Pastorello, E.A. (2000). Hazelnut allergy: a double-blind, placebo-controlled food challenge multicenter study. J. Allergy Clin. Immunol. 105(3):577–581.
  • Parvataneni, S., Birmingham, N.P., Gonipeta, B. and Gangur, V. (2009a). Dominant, non-MHC genetic control of food allergy in an adjuvant-free mouse model. Int. J. Immunogenet. 36(5):261–267.
  • Parvataneni, S., Gonipeta, B., Tempelman, R.J. and Gangur, V. (2009b). Development of an Adjuvant-Free Cashew Nut Allergy Mouse Model. Int. Arch Allergy Immunol. 149(4):299–304.
  • Patel, D.A., Holdford, D.A., Edwards, E. and Carroll, N.V. (2011). Estimating the economic burden of food-induced allergic reactions and anaphylaxis in the United States. J. Allergy Clin. Immunol. 128(1):110–115 e115.
  • Plenge, R.M. (2010). Unlocking the pathogenesis of celiac disease. Nat Genet. 42(4):281–282.
  • Proust, B., Astier, C., Jacquenet, S., Ogier, V., Magueur, E., Roitel, O., Belcourt, C., Morisset, M., Moneret-Vautrin, D.A., Bihain, B.E. and Kanny, G. (2008). A single oral sensitization to peanut without adjuvant leads to anaphylaxis in mice. Int. Arch Allergy Immunol. 146(3):212–218.
  • Rajan, T.V. (2003). The Gell-Coombs classification of hypersensitivity reactions: A re-interpretation. Trends Immunol. 24(7):376–379.
  • Rook, G.A. (2011). Hygiene and other early childhood influences on the subsequent function of the immune system. Dig. Dis. 29(2):144–153.
  • Sampson, H.A. (2001). Utility of food-specific IgE concentrations in predicting symptomatic food allergy. J. Allergy Clin. Immunol. 107(5):891–896.
  • Sampson, H.A. (2003). Food allergy. J. Allergy Clin. Immunol. 111(2 Suppl):S540–547.
  • Sampson, H.A. (2004). Update on food allergy. J. Allergy Clin. Immunol. 113(5):805–819; quiz 820.
  • Sampson, H.A. and Burks, A.W. (1996). Mechanisms of food allergy. Annu. Rev. Nutr. 16:161–177.
  • Sampson, H.A. and Ho, D.G. (1997). Relationship between food-specific IgE concentrations and the risk of positive food challenges in children and adolescents. J. Allergy Clin. Immunol. 100(4):444–451.
  • Sathe, S.K. and Sharma, G.M. (2009). Effects of food processing on food allergens. Mol. Nutr. Food Res. 53(8):970–978.
  • Saxon, A. and Diaz-Sanchez, D. (2005). Air pollution and allergy: you are what you breathe. Nat. Immunol. 6(3):223–226.
  • Selgrade, M.K., Bowman, C.C., Ladics, G.S., Privalle, L. and Laessig, S.A. (2009). Safety assessment of biotechnology products for potential risk of food allergy: implications of new research. Toxicol. Sci. 110(1):31–39.
  • Selgrade, M.K., Kimber, I., Goldman, L. and Germolec, D.R. (2003). Assessment of allergenic potential of genetically modified foods: an agenda for future research. Environ. Health Perspect. 111(8):1140–1141.
  • Shimamoto, S.R. and Bock, S.A. (2002). Update on the clinical features of food-induced anaphylaxis. Curr. Opin. Allergy Clin. Immunol. 2(3):211–216.
  • Shreffler, W.G., Charlop-Powers, Z. and Sicherer, S.H. (2006). Lack of association of HLA class II alleles with peanut allergy. Ann. Allergy Asthma Immunol. 96(6):865–869.
  • Sicherer, S.H. (2007). Food for thought on prevention and treatment of atopic disease through diet. J. Pediatr. 151(4):331–333.
  • Sicherer, S.H. (2011). Epidemiology of food allergy. J. Allergy Clin. Immunol. 127(3):594–602.
  • Sicherer, S.H. and Sampson, H.A. (1999). Cow's milk protein-specific IgE concentrations in two age groups of milk-allergic children and in children achieving clinical tolerance. Clin. Exp. Allergy. 29(4):507–512.
  • Sicherer, S.H. and Sampson, H.A. (2006). Food allergy. J. Allergy Clin. Immunol. 117(2 Suppl Mini-Primer):S470–S475.
  • Sicherer, S.H. and Sampson, H.A. (2009). Food allergy: recent advances in pathophysiology and treatment. Annu. Rev. Med. 60:261–277.
  • Sicherer, S.H. and Sampson, H.A. (2010). Food allergy. J. Allergy Clin. Immunol. 125(2 Suppl 2):S116–125.
  • Skolnick, H.S., Conover-Walker, M.K., Koerner, C.B., Sampson, H.A., Burks, A.W. and Wood, R.A. (2001). The natural history of peanut allergy. J. Allergy Clin. Immunol. 107(2):367–374.
  • Snider, D.P., Marshall, J.S., Perdue, M.H. and Liang, H. (1994). Production of IgE antibody and allergic sensitization of intestinal and peripheral tissues after oral immunization with protein Ag and cholera toxin. J. Immunol. 153(2):647–657.
  • Sollid, L.M. (2002). Coeliac disease: dissecting a complex inflammatory disorder. Nat. Rev. Immunol. 2(9):647–655.
  • Soyer, O.U. and Sekerel, B.E. (2008). Food dependent exercise induced anaphylaxis or exercise induced anaphylaxis? Allergol. Immunopathol. (Madr) 36(4):242–243.
  • Strid, J., Hourihane, J., Kimber, I., Callard, R. and Strobel, S. (2005). Epicutaneous exposure to peanut protein prevents oral tolerance and enhances allergic sensitization. Clin. Exp. Allergy. 35(6):757–766.
  • Tan, T.H., Ellis, J.A., Saffery, R. and Allen, K.J. (2012). The role of genetics and environment in the rise of childhood food allergy. Clin. Exp. Allergy. 42(1):20–29.
  • Teuber, S.S. and Beyer, K. 2004. Peanut, tree nut and seed allergies. Curr. Opin. Allergy Clin. Immunol. 4(3):201–203.
  • USFDA. (2006). http://www.fda.gov/food/labelingnutrition/foodallergens-labeling/guidancecomplianceregulatoryinformation/ucm106108.htm
  • USFDA. (2011). http://www.fda.gov/ForConsumers/ConsumerUpdates/ucm-254504.shtm
  • Venugopal, G., Yang, M., Luo, Z., Salo, D., Cheang, M. and Mohapatra, S.S. (1995). Analysis of Tcrvb8, Il4, and Ifg as genetic predisposition factors for atopic IgE response in a murine model. J. Immunol. 155(11):5463–5470.
  • Wang, J. and Sampson, H.A. (2007). Food anaphylaxis. Clin. Exp. Allergy. 37(5):651–660.
  • Wang, J. and Sampson, H.A. (2009). Food allergy: Recent advances in pathophysiology and treatment. Allergy Asthma Immunol. Res. 1(1):19–29.
  • Wang, J. and Sampson, H.A. (2011). Food allergy. J. Clin. Invest. 121(3):827–835.
  • Watura, J.C. (2002). Nut allergy in schoolchildren: a survey of schools in the Severn NHS Trust. Arch Dis. Child. 86(4):240–244.
  • Wensing, M., Penninks, A.H., Hefle, L.S., Akkerdaas, J.H., van Ree, R., Koppelman, S.J., Bruijnzeel-Koomen, C.A. and Knulst, A.C. (2002). The range of minimum provoking doses in hazelnut-allergic patients as determined by double-blind, placebo-controlled food challenges. Clin. Exp. Allergy. 32(12):1757–1762.

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