Journal of Clinical Pediatrics ›› 2022, Vol. 40 ›› Issue (8): 566-572.doi: 10.12372/jcp.2022.22e0131
• Expert Review • Previous Articles Next Articles
ZHONG Wenwei, LI Jingyang, GENG Liting, ZHANG Jianhua
Received:
2022-01-20
Online:
2022-08-15
Published:
2022-08-09
ZHONG Wenwei, LI Jingyang, GENG Liting, ZHANG Jianhua. Research progress and prospect of clinical application of basophils in allergic diseases[J].Journal of Clinical Pediatrics, 2022, 40(8): 566-572.
[1] |
Miyake K, Shibata S, Yoshikawa S, et al. Basophils and their effector molecules in allergic disorders[J]. Allergy, 2021, 76(6): 1693-1706.
doi: 10.1111/all.14662 |
[2] |
Karasuyama H, Shibata S, Yoshikawa S, et al. Basophils, a neglected minority in the immune system, have come into the limelight at last[J]. Int Immunol, 2021, 33(12): 809-813.
doi: 10.1093/intimm/dxab021 pmid: 34038539 |
[3] |
Karasuyama H, Miyake K, Yoshikawa S, et al. How do basophils contribute to Th2 cell differentiation and allergic responses?[J]. Int Immunol, 2018, 30(9): 391-396.
doi: 10.1093/intimm/dxy026 pmid: 30169733 |
[4] |
Sokol CL, Chu NQ, Yu S, et al. Basophils function as antigen-presenting cells for an allergen-induced T helper type 2 response[J]. Nat Immunol, 2009, 10(7): 713-720.
doi: 10.1038/ni.1738 |
[5] |
Perrigoue JG, Saenz SA, Siracusa MC, et al. MHC class II-dependent basophil-CD4+ T cell interactions promote T(H)2 cytokine-dependent immunity[J]. Nat Immunol, 2009, 10(7): 697-705.
doi: 10.1038/ni.1740 |
[6] |
Sokol CL, Barton GM, Farr AG, et al. A mechanism for the initiation of allergen-induced T helper type 2 responses[J]. Nat Immunol, 2008, 9(3): 310-318.
doi: 10.1038/ni1558 |
[7] |
Sullivan BM, Liang HE, Bando JK, et al. Genetic analysis of basophil function in vivo[J]. Nat Immunol, 2011, 12(6): 527-535.
doi: 10.1038/ni.2036 |
[8] |
Miyake K, Karasuyama H. Emerging roles of basophils in allergic inflammation[J]. Allergol Int, 2017, 66(3): 382-391.
doi: 10.1016/j.alit.2017.04.007 |
[9] |
Sarfati M, Wakahara K, Chapuy L, et al. Mutual interaction of basophils and t cells in chronic inflammatory diseases[J]. Front Immunol, 2015, 6: 399.
doi: 10.3389/fimmu.2015.00399 pmid: 26284078 |
[10] |
Di C, Lin X, Zhang Y, et al. Basophil-associated OX40 ligand participates in the initiation of Th2 responses during airway inflammation[J]. J Biol Chem, 2015, 290(20): 12523-12536.
doi: 10.1074/jbc.M115.642637 |
[11] |
Zhong W, Su W, Zhang Y, et al. Basophils as a primary inducer of the T helper type 2 immunity in ovalbumin-induced allergic airway inflammation[J]. Immunology, 2014, 142(2): 202-215.
doi: 10.1111/imm.12240 |
[12] |
Zhong W, Di C, Lv J, et al. Heme oxygenase-1 inhibits basophil maturation and activation but promotes its apoptosis in T helper type 2-mediated allergic airway inflammation[J]. Immunology, 2016, 147(3): 321-337.
doi: 10.1111/imm.12564 |
[13] |
Yoshimoto T, Yasuda K, Tanaka H, et al. Basophils contribute to T(H)2-IgE responses in vivo via IL-4 production and presentation of peptide-MHC class II complexes to CD4+ T cells[J]. Nat Immunol, 2009, 10(7): 706-712.
doi: 10.1038/ni.1737 pmid: 19465908 |
[14] |
Schuijs MJ, Hammad H, Lambrecht BN. Professional and ‘Amateur' antigen-presenting cells in type 2 immunity[J]. Trends Immunol, 2019, 40(1): 22-34.
doi: 10.1016/j.it.2018.11.001 |
[15] |
Yamanishi Y, Miyake K, Iki M, et al. Recent advances in understanding basophil-mediated Th2 immune responses[J]. Immunol Rev, 2017, 278(1): 237-245.
doi: 10.1111/imr.12548 |
[16] |
Miyake K, Shiozawa N, Nagao T, et al. Trogocytosis of peptide-MHC class II complexes from dendritic cells confers antigen-presenting ability on basophils[J]. Proc Natl Acad Sci U S A, 2017, 114(5): 1111-1116.
doi: 10.1073/pnas.1615973114 |
[17] |
Chirumbolo S, Bjorklund G, Sboarina A, et al. The role of basophils as innate immune regulatory cells in allergy and immunotherapy[J]. Hum Vaccin Immunother, 2018, 14(4): 815-831.
doi: 10.1080/21645515.2017.1417711 |
[18] |
Sharma M, Stephen-Victor E, Poncet P, et al. Basophils are inept at promoting human Th17 responses[J]. Hum Immunol, 2015, 76(2-3): 176-180.
doi: 10.1016/j.humimm.2014.12.015 pmid: 25526920 |
[19] |
Wakahara K, Van VQ, Baba N, et al. Basophils are recruited to inflamed lungs and exacerbate memory Th2 responses in mice and humans[J]. Allergy, 2013, 68(2): 180-189.
doi: 10.1111/all.12072 pmid: 23205591 |
[20] |
Wakahara K, Van VQ, Baba N, et al. Basophils are recruited to inflamed lungs and exacerbate memory Th2 responses in mice and humans[J]. Allergy, 2013, 68(2): 180-189.
doi: 10.1111/all.12072 pmid: 23205591 |
[21] | Endo Y. Hirahara K, Yagi R, et al. Pathogenic menory type Th2 cells in allergic inflammation[J]. Trends lmmunol, 2014, 35(1): 59-78. |
[22] |
Wakahara K, Baba N, Van VQ, et al. Human basophils interact with memory T cells to augment Th17 responses[J]. Blood, 2012, 120(24): 4761-4771.
doi: 10.1182/blood-2012-04-424226 pmid: 23071273 |
[23] |
Chapuy L, Bsat M, Mehta H, et al. Basophils increase in Crohn disease and ulcerative colitis and favor mesenteric lymph node memory TH17/TH1 response[J]. J Allergy Clin Immunol, 2014, 134(4): 978-981.
doi: 10.1016/j.jaci.2014.05.025 |
[24] |
Silverpil E, Linden A. IL-17 in human asthma[J]. Expert Rev Respir Med, 2012, 6(2): 173-186.
doi: 10.1586/ers.12.12 |
[25] |
Maddur MS, Miossec P, Kaveri SV, et al. Th17 cells: biology, pathogenesis of autoimmune and inflammatory diseases, and therapeutic strategies[J]. Am J Pathol, 2012, 181(1): 8-18.
doi: 10.1016/j.ajpath.2012.03.044 pmid: 22640807 |
[26] |
Rodriguez Gomez M, Talke Y, Goebel N, et al. Basophils support the survival of plasma cells in mice[J]. J Immunol, 2010, 185(12): 7180-7185.
doi: 10.4049/jimmunol.1002319 pmid: 21068399 |
[27] |
Denzel A, Maus UA, Rodriguez Gomez M, et al. Basophils enhance immunological memory responses[J]. Nat Immunol, 2008, 9(7): 733-742.
doi: 10.1038/ni.1621 |
[28] |
Kawakami T. Basophils now enhance memory[J]. Nat Immunol, 2008, 9(7): 720-721.
doi: 10.1038/ni0708-720 |
[29] |
Passante E. Mast cell and basophil cell lines: a compendium[J]. Methods Mol Biol, 2020, 2163: 127-144.
doi: 10.1007/978-1-0716-0696-4_10 pmid: 32766971 |
[30] |
Santos AF, Alpan O, Hoffmann HJ. Basophil activation test: mechanisms and considerations for use in clinical trials and clinical practice[J]. Allergy, 2021, 76(8): 2420-2432.
doi: 10.1111/all.14747 |
[31] |
Ebo DG, Bridts CH, Mertens CH, et al. Principles, potential, and limitations of ex vivo basophil activation by flow cytometry in allergology: a narrative review[J]. J Allergy Clin Immunol, 2021, 147(4): 1143-1153.
doi: 10.1016/j.jaci.2020.10.027 |
[30] |
Eberlein B. Basophil activation as marker of clinically relevant allergy and therapy outcome[J]. Front Immunol, 2020, 11: 1815.
doi: 10.3389/fimmu.2020.01815 |
[31] | Seth D, Poowutikul P, Pansare M, et al. Food allergy: a review[J]. Pediatr Ann, 2020, 49(1): e50-e58. |
[32] |
Gomes-Belo J, Hannachi F, Swan K, et al. Advances in food allergy diagnosis[J]. Curr Pediatr Rev, 2018, 14(3): 139-149.
doi: 10.2174/1573396314666180423105842 |
[33] |
Oriel RC, Wang J. Diagnosis and management of food allergy[J]. Immunol Allergy Clin North Am, 2021, 41(4): 571-585.
doi: 10.1016/j.iac.2021.07.012 |
[34] |
Hoffmann HJ, Santos AF, Mayorga C, et al. The clinical utility of basophil activation testing in diagnosis and monitoring of allergic disease[J]. Allergy, 2015, 70(11): 1393-1405.
doi: 10.1111/all.12698 pmid: 26198455 |
[35] |
Rubio A, Vivinus-Nebot M, Bourrier T, et al. Benefit of the basophil activation test in deciding when to reintroduce cow's milk in allergic children[J]. Allergy, 2011, 66(1): 92-100.
doi: 10.1111/j.1398-9995.2010.02432.x pmid: 20608919 |
[36] |
Santos AF, Douiri A, Becares N, et al. Basophil activation test discriminates between allergy and tolerance in peanut-sensitized children[J]. J Allergy Clin Immunol, 2014, 134(3): 645-652.
doi: 10.1016/j.jaci.2014.04.039 |
[37] |
Wanich N, Nowak-Wegrzyn A, Sampson HA, et al. Allergen-specific basophil suppression associated with clinical tolerance in patients with milk allergy[J]. J Allergy Clin Immunol, 2009, 123(4): 789-794.
doi: 10.1016/j.jaci.2008.12.1128 pmid: 19348919 |
[38] |
Sato S, Tachimoto H, Shukuya A, et al. Basophil activation marker CD203c is useful in the diagnosis of hen's egg and cow's milk allergies in children[J]. Int Arch Allergy Immunol, 2010, 152(Suppl 1): 54-61.
doi: 10.1159/000312126 |
[39] |
Ford LS, Bloom KA, Nowak-Wegrzyn AH, et al. Basophil reactivity, wheal size, and immunoglobulin levels distinguish degrees of cow's milk tolerance[J]. J Allergy Clin Immunol, 2013, 131(1): 180-186.
doi: 10.1016/j.jaci.2012.06.003 |
[40] |
Demoly P, Adkinson NF, Brockow K, et al. International consensus on drug allergy[J]. Allergy, 2014, 69(4): 420-437.
pmid: 24697291 |
[41] |
Brockow K, Garvey LH, Aberer W, et al. Skin test concen-trations for systemically administered drugs -- an ENDA/EAACI Drug Allergy Interest Group position paper[J]. Allergy, 2013, 68(6): 702-712.
doi: 10.1111/all.12142 pmid: 23617635 |
[42] |
Elst J, Sabato V, van der Poorten MM, et al. Basophil and mast cell activation tests by flow cytometry in immediate drug hypersensitivity: diagnosis and beyond[J]. J Immunol Methods, 2021, 495: 113050.
doi: 10.1016/j.jim.2021.113050 |
[43] |
Van Gasse AL, Elst J, Bridts CH, et al. Rocuronium hypersensitivity: does off-target occupation of the MRGPRX2 receptor play a role?[J]. J Allergy Clin Immunol Pract, 2019, 7(3): 998-1003.
doi: 10.1016/j.jaip.2018.09.034 |
[44] |
Sabato V, Ebo DG. Hypersensitivity to neuromuscular blocking agents: can skin tests give the green light for reexposure?[J]. J Allergy Clin Immunol Pract, 2018, 6(5): 1690-1691.
doi: S2213-2198(18)30100-4 pmid: 30197072 |
[45] |
Laguna JJ, Bogas G, Salas M, et al. The basophil activation test can be of value for diagnosing immediate allergic reactions to omeprazole[J]. J Allergy Clin Immunol Pract, 2018, 6(5): 1628-1636.
doi: S2213-2198(17)30960-1 pmid: 29339127 |
[46] |
Yasui K, Takihara Y, Matsuyama N, et al. Sensitivity and specificity of passive immune-basophil activation test to detect allergic transfusion reactions[J]. Transfusion, 2019, 59(11): 3308-3313.
doi: 10.1111/trf.15542 |
[47] |
Hirayama F, Yasui K, Matsuyama N, et al. Possible utility of the basophil activation test for the analysis of mechanisms involved in allergic transfusion reactions[J]. Transfus Med Rev, 2018, 32(1): 43-51.
doi: S0887-7963(17)30107-4 pmid: 29017820 |
[48] |
HOZA M, Merk HF, Kotliar K, et al. The CD63 basophil activation test as a diagnostic tool for assessing autoimmunity in patients with chronic spontaneous urticaria[J]. Eur J Dermatol, 2019, 29(6): 614-618.
doi: 10.1684/ejd.2019.3680 |
[49] |
D'Auria E, De Amici M, Licari A, et al. Basophil activation test in children with autoimmune chronic spontaneous urticaria: Is it ready for clinical practice?[J]. Immunobiology, 2019, 224(1): 30-33.
doi: S0171-2985(18)30181-5 pmid: 30466958 |
[50] |
Terada T, Kawata R. Diagnosis and treatment of local allergic rhinitis[J]. Pathogens, 2022, 11(1): 80.
doi: 10.3390/pathogens11010080 |
[51] | Nemsovska J, Waczulikova I, Svecova D. Basophil activation test in the diagnostics of hymenoptera venom allergy[J]. Bratisl Lek Listy, 2021, 122(11): 778-784. |
[52] |
Peternelj A, Silar M, Erzen R, et al. Basophil sensitivity in patients not responding to venom immunotherapy[J]. Int Arch Allergy Immunol, 2008, 146(3): 248-254.
doi: 10.1159/000116361 |
[53] |
Nilsson C, Nordvall L, Johansson SG, et al. Successful management of severe cow's milk allergy with omalizumab treatment and CD-sens monitoring[J]. Asia Pac Allergy, 2014, 4(4): 257-260.
doi: 10.5415/apallergy.2014.4.4.257 |
[54] |
Mikhail I, Grayson MH. Asthma and viral infections: an intricate relationship[J]. Ann Allergy Asthma Immunol, 2019, 123(4): 352-358.
doi: 10.1016/j.anai.2019.06.020 |
[55] |
Kwong CG, Bacharier LB. Phenotypes of wheezing and asthma in preschool children[J]. Curr Opin Allergy Clin Immunol, 2019, 19(2): 148-153.
doi: 10.1097/ACI.0000000000000516 |
[56] |
Boulet LP, Reddel HK, Bateman E, et al. The Global Initiative for Asthma (GINA): 25 years later[J]. Eur Respir J, 2019, 54(2): 1900598.
doi: 10.1183/13993003.00598-2019 |
[57] | Serebrisky D, Wiznia A. Pediatric asthma: a global epidemic[J]. Ann Glob Health, 2019, 85(1): 6. |
[58] |
Zhou X, Hong J. Pediatric asthma management in China: current and future challenges[J]. Paediatr Drugs, 2018, 20(2): 105-110.
doi: 10.1007/s40272-017-0276-7 |
[59] |
Carroll CL, Sekaran AK, Lerer TJ, et al. A modified pulmonary index score with predictive value for pediatric asthma exacerbations[J]. Ann Allergy Asthma Immunol, 2005, 94(3): 355-359.
doi: 10.1016/S1081-1206(10)60987-8 |
[60] |
Castro-Rodriguez JA. The asthma predictive index: early diagnosis of asthma[J]. Curr Opin Allergy Clin Immunol, 2011, 11(3): 157-161.
doi: 10.1097/ACI.0b013e3283464c4a |
[61] |
Wi CI, Krusemark EA, Voge G, et al. Usefulness of asthma predictive index in ascertaining asthma status of children using medical records: an explorative study[J]. Allergy, 2018, 73(6): 1276-1283.
doi: 10.1111/all.13403 pmid: 29319899 |
[62] |
Li J, Wu J, Liu H, et al. Utility of basophil activation test for predicting the outcome of wheezing in children: a pilot study[J]. BMC Immunol, 2021, 22(1): 4.
doi: 10.1186/s12865-020-00395-4 |
No related articles found! |
|