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Article

Basophils Predict Mite Sensitization in Patients with Kawasaki Disease

1
Department of Pediatrics and Kawasaki Disease Center, Kaohsiung Chang Gung Memorial Hospital, Kaohsiung 833, Taiwan
2
School of Medicine, College of Medicine, Chang Gung University, Taoyuan 333, Taiwan
3
Department of Pharmacy, Kaohsiung Chang Gung Memorial Hospital, Kaohsiung 833, Taiwan
4
Department of Pharmacy, Tajen University, Pingtung 907, Taiwan
5
The Biostatistics Center, Kaohsiung Chang Gung Memorial Hospital, Kaohsiung 833, Taiwan
*
Author to whom correspondence should be addressed.
Children 2023, 10(7), 1209; https://doi.org/10.3390/children10071209
Submission received: 4 June 2023 / Revised: 30 June 2023 / Accepted: 11 July 2023 / Published: 12 July 2023
(This article belongs to the Section Pediatric Infectious Diseases)

Abstract

:
Background: Patients with Kawasaki disease (KD) are at a significantly increased risk of allergic diseases. Immunoglobulin E (IgE) is an immunoglobulin that mediates allergic sensitization to various allergens and is related to various allergic diseases. However, few studies have analyzed specific IgE on allergy biomarkers after KD is diagnosed. Objective: This study aimed to investigate the pattern of specific IgE levels against food and inhalant allergens. Methods: This retrospective study was conducted in Taiwan to identify patients admitted with KD. A subset of 453 admitted KD children younger than or equal to five years of age with intravenous immunoglobulin (IVIG) was followed up at our clinic with available specific IgE data. Results: The most common allergens were Dermatophagoides farina or pteronyssinus, house-dust, and cockroach mix. Positive specific IgE for Dermatophagoides farina or pteronyssinus was less common in children diagnosed with KD who were two years old or younger (p = 0.028). KD patients with higher basophils before IVIG (p = 0.010 and 0.018 for two different mites) and higher C-reactive protein (CRP, p = 0.030 and 0.028) after IVIG were at higher risk of mite sensitization. Integrated mite sensitization demonstrated higher basophils before IVIG, age at KD diagnosis, and the male sex to be clinically meaningful after logistic regression models. Conclusions: This study is the first to suggest that specific IgE in KD patients may be correlated with age at KD diagnosis, as well as basophils. Further longitudinal prospective studies are warranted to clarify the unique profile of specific IgE in KD patients.

1. Introduction

Various data, including the activation of B cells and the analysis of B cell receptors, have suggested the role of infection by pathogens in Kawasaki disease (KD) [1,2]. Non-infectious triggers such as mites have also been reported as a causative agent in KD [3,4]. Real-world studies have pointed out that patients that received high-dose intravenous immunoglobulin (IVIG), whether to treat KD or severe enterovirus, may show a significant increase in eosinophils [5]. As a result, IVIG is also suspected to be one of the reasons for the increase in allergic diseases after KD [6]. The anti-inflammatory mechanisms of IVIG include saturating Fc receptors and inhibitory effects on the mRNA expression of Fc receptors, lowering the production of cytokines, and on epigenetic modulation to increase gene methylation [7,8]. Among patients treated with IVIG, only patients with hyper immunoglobulin(Ig) E syndrome or atopic dermatitis had decreased IgE levels after treatment, and levels in patients with KD or idiopathic thrombocytopenic purpura were unchanged [9]. Many drugs have complex effects on immunity, which can have both negative and positive effects on allergic inflammation [10]. IVIG has a powerful therapeutic effect on KD, and the few side effects are mostly mild and temporary [11,12]. During the infusion, IgE-mediated immediate reactions may occur [13]. After KD patients finished immunoglobulin, unlike IgA, G, or M, no significant changes were found in IgE [14]. However, another study on KD patients with or without coronary artery lesions had inconsistent results and showed higher IgE in the acute phase than in the convalescent phase [15]. At the same time, the role of IgE in KD was not like IgG, A, or M, which had predictive roles for outcomes [14,16]. In previous studies, IgE levels were once found to be higher in KD patients than in the control group at the acute stage [17]. However, these findings were inconclusive. In a recent study, Shen et al. identified decreased IgA and IgG in the KD group compared with the control group, but not IgE or IgM levels [18]. However, IgE concentrations cannot reflect those that have been combined with IgE receptors nor the role of specific IgE due to low sensitivity [19]. Due to the activation of B cells in KD and the increase in allergic diseases in KD patients, the role of IgE also needs to be further explored and analyzed [20]. Specific IgE may have a much greater significance to a certain allergen [21,22,23]. Even though allergic diseases play a very important role when following up patients with KD, no research has currently been conducted on the role of specific IgE against food and inhalant allergens in patients with KD [5,6].
We used data from a retrospective cohort to investigate the associations between specific IgE levels and IVIG treatment. These associations were also explored between markers and allergen sensitization.

2. Methods

Specific Immunoglobulin E in Chang Gung Research Database

In this study, we enrolled Taiwanese patients with acute KD who were admitted to Chang Gung Memorial Hospital between 1 January 2001 and 26 June 2019. We extracted data from the medical claims of the Chang Gung Research Database (CGRD), which includes de-identified personal data on demographics (sex, age), disease diagnoses, pharmacy records, laboratory data, and examination reports. Specific IgE data have been integrated into CGRD since 2015 [24,25]. We enrolled participants diagnosed with KD (disease code of International Classification of Disease, Ninth Revision [ICD-9]:446 or ICD-10: M30) and laboratory records of specific IgE after KD diagnosis during follow-up at Kaohsiung Chang Gung Memorial Hospital. This retrospective study was reviewed and approved by our facility’s institutional review board in Kaohsiung, Taiwan (IRB number: 202001038B0).
The basic information of subjects is listed in Table 1. Figure 1 shows the current study design of enrollment for the selection of subjects. We excluded inpatients with KD above five years old at the diagnosis of KD (n = 167). KD patients without IVIG treatment were excluded (n = 658). Subjects were excluded if they had tested for specific IgE prior to their KD diagnosis (n = 6). Patients with KD underwent specific IgE tests with 36 items (n = 453) using the validated multiple allergen simultaneous tests system (MAST, OPTIGEN; Hitachi Chemical Diagnostics, Inc., Mountain View, CA, USA) in Chang Gung Memorial Hospital. In this study, patients with positive results for specific IgE greater than or equal to one class constituted the positive specific IgE group; the remaining patients with zero class constituted the negative specific IgE group. We obtained and analyzed total IgE levels of the KD patients and performed specific IgE tests. Among KD patients with sIgE, 182 patients had at least one test by MAST.
All data are shown as mean with standard deviation. The CGRD results of the specific IgE collected from KD patients were analyzed and compared using t-test for continuous variables (Table 2) and Chi-square test for discontinuous variables. When comparing negative and positive groups for mite specific IgE at different time points, the p-values in Table 2 were corrected by a false discovery rate [26]. Logistic regression models were applied where the risk of positive specific IgE for mites was estimated. We performed statistical analysis using the Statistical Analysis System Package (SAS statistical software, Version 9.4; SAS Institute, Cary, NC, USA). A p-value of less than 0.05 was considered statistically significant.

3. Results

Among these patients, only one dose of IVIG accounted for approximately 86.8% of cases (393 of 453). Fifty-two patients required a second dose, and eight patients required a third dose. The follow-up period ranged 1595.2 ± 1476.3 days in KD patients with IVIG (Table 1). The IgE of patients who received IVIG twice or three times was not higher than that of KD patients who received IVIG only once (222.2 ± 321.8 vs. 312.2 ± 553.4 kU/L, p = 0.086).
The prevalence of positive specific IgE for allergens of inhalation (chicken feathers, Bermuda grass, black willow, eucalyptus, Japanese cedar, white mulberry, pigweed, ragweed mix I, Timothy grass, Alternaria, Aspergillus, Cladosporium, Penicillium, cat, dog, house-dust, cockroach mix, mite DF, and mite DP) or food (avocado, pork, beef, milk, cheddar cheese, shrimp, crab, clam, codfish, tuna, peanut, soybean, wheat, brewer’s yeast, egg yolk, and egg white) was 42.6% and 33.6% in KD patients with IVIG. In our study, approximately half of the KD patients with IVIG (54.5%) had an inhalant or a food sensitization.
The study of KD patients identified the five most common allergens as mite DF (Dermatophagoides farina, 38.9%), mite DP (Dermatophagoides pteronyssinus 37.3%), house-dust (21.2%), cockroach mix (15.5%), and beef (11.9%) in patients with IVIG.
We observed no significant difference in the sensitization of these 36 allergens between KD patients who received IVIG once and KD patients who received IVIG two or three times (p > 0.05) (Supplementary Table S1).
Most patients who contract KD are less than two years old (Table 1) [27]. In KD patients with IVIG diagnosed at more than two years old, the positive rate of the most positive allergen Dermatophagoides farina or pteronyssinus was higher than that of patients diagnosed with KD under the age of two years old (n = 28 positive for mite DF or DP in 51 patients diagnosed with KD older than 2 years old), and the class was higher (class 2 in five patients; class 3 or 4 in 19 patients) (Table 3). However, the other four top specific IgE (house-dust, cockroach mix, beef, and shrimp) did not differ significantly between KD patients diagnosed below the age of two years old and those above it (p > 0.05) (Table 3).
In Table 2, we analyzed KD patients who received IVIG treatment and found that the positive specific IgE for the most common allergens, mite DF or mite DP, was related to the C-reactive protein (CRP) within one week after IVIG (35.2 ± 37.8 and 26.4 ± 29.2 mg/L, p = 0.040). The albumin levels before and after IVIG treatment were lower, and the probability of positive specific IgE for mites in the future was also higher (mite DP 3.6 ± 0.6 and 3.8 ± 0.5 g/dL, p = 0.045 before IVIG; 3.2 ± 0.5 and 3.4 ± 0.4 g/dL, p = 0.018 after IVIG). A higher percentage of basophils before IVIG treatment was associated with being positive for mite specific IgE in the future (mite DF 0.3 ± 0.4 and 0.2 ± 0.3%, p = 0.010; mite DP 0.3 ± 0.4 and 0.2 ± 0.3, p = 0.018). Furthermore, a logistic regression model with variables including sex and age at diagnosis of KD was applied. Compared with KD patients not tested as having positive IgE for mites, those with positive IgE recorded a higher percentage of basophils (p = 0.004) according to age at KD diagnosis and male sex (p = 0.005 and 0.009, respectively).
In the initial screening panel, 27 patients who had a negative result in mite DF became positive, but 87 patients with a negative result still showed negative in the following MAST. In the initial screening panel, 25 patients who had a negative result in mite DP became positive, but 94 patients with negative result still showed negative in the following MAST. The characteristics of sIgE development for mites were compared. We found that the percentage of basophils after IVIG could predict the positive sIgE (DF, 0.34 ± 0.47 and 0.17 ± 0.27%, p = 0.0495; DP, 0.41 ± 0.51 and 0.17 ± 0.26%, p = 0.012) over time. The sIgE development for mites did not differ significantly from the negative group regarding age at first sIgE or KD, the time interval between the first and next tests, the number of IVIG, sex, albumin, alanine aminotransferas, aspartate transaminase, CRP, leukocytes, hemoglobulin, platelet, the percentage of eosinophils, lymphocytes, monocytes, and neutrophils before or after IVIG (p > 0.05). We found that the above factors did not predict the development of tolerance in mite allergy. In the initial screening panel, only 1 patient who had a positive result in mite DF became negative, but 67 patients with a positive result still showed positive in the following MAST. In the initial screening panel, 4 patients who had a positive result in mite DP became negative, but 59 patients with positive result still showed positive in the following MAST.
Interestingly, the percentage of eosinophils before and after IVIG treatment did not influence the positive rate of specific IgE for the top five positive allergens (p > 0.05). Furthermore, when the absolute eosinophil count before and after IVIG use was greater than 500/μL, it did not increase the positive rate of specific IgE for the top five allergens (mite DF or DP, house-dust, cockroach mix, beef, and shrimp) (p = 0.716, 0.832, 0.920, 0.628, and 0.184).

4. Discussion

We discovered that the top allergens in KD patients indeed matched the top allergens for allergic diseases in Taiwan [28]. In the database, the specific IgE tests were for patients with allergic symptoms. The positive rate of specific IgE was consistent with that of allergic patients aged 5–18 in Taiwan, and half of them tested positive for specific IgE [29].
Sensitization to mites had the highest population attributable risks for asthma, eczema, and rhinitis [23,29,30,31]. We found that the positive specific IgE for mites was associated with higher basophils before IVIG. Allergy is induced by the interaction between the allergens and IgE bound to mast cells and basophils that induce the release of inflammatory mediators [32]. Basophils initiate chronic allergic reaction and are essential for protease antigen specific IgE induction [33]. We also found that higher basophils of KD patients were likely to produce positive specific IgE for mites in the future. Since basophil is an important biomarker involved in atopic immune responses, these mechanisms may also be involved in the clinical progression of KD. The incidence of allergic diseases in children increases with age, and the addition of inflammation to the allergen sensitization process may explain the higher positive rate of specific IgE in KD diagnosed at older ages [28]. Glode et al. found no difference in anti-mite antibody concentrations between convalescent sera from KD and those from pediatric hospitalized controls [34].
We saw a wealth of research into allergic diseases and KD and how these were related to eosinophils, IgE, IgE receptors, and IL-4 [35,36,37,38]. A decade of research has now given us useful information on KD associated with allergic diseases [39,40]. At the same time, these allergic biomarkers have also been found to be useful in predicting the disease prognosis [41]. Given the limitations of the research method, our knowledge of basophils in KD diagnosis and patho-etiology was very limited. Seminal work on basophil histamine release in the diagnosis of mite allergy in asthmatic children was carried out by ØSTERGAARD (1990) and other researchers [42,43]. Our research has suggested potentially important influences of basophils on the sensitization of mites in KD patients.
CRP, neutrophils, and albumin have been commonly used parameters for measuring the activity of inflammatory conditions. [7] Previous reports have indicated that low serum albumin levels due to vasculitis and plasma leakage were correlated with nutrition and immune status and associated with IVIG treatment failure in KD patients, intensive care unit admission, and coronary artery lesions. Vascular leakage was suspected to not only result in hypoalbuminemia but also to allow allergens from the respiratory tract into the sub-epithelial space and circulation and further sensitization. Therefore, the inflammatory state, especially after IVIG treatment, reflecting the therapeutic effect of IVIG, would be related to the positive specific IgE for mites, rather than the number of IVIG administration.
Because the research of big data allowed us to follow up children with KD to the age when they would develop allergic diseases, we learned through cohort studies that asthma, rhinitis, and atopic dermatitis would increase after KD. The gradually increasing laboratory data in the CGRD were complementary to the shortcomings of the Taiwan National Health Insurance Research Database, which started to include laboratory data in 2021 [44].
Our study had several limitations. In this study, we did not determine specific IgE to be associated with KD outcomes. Resources to determine whether the patients had coronary artery dilatations were not available from the unstructured part of the CGRD system [45]. Because of the database design of this study, the absence of healthy controls or provocation tests in our study rendered a causal relationship between positive specific IgE and allergic symptoms unable to be concluded, and it was difficult to compare the positive rate of specific IgE between the controls and KD patients [46]. The major limitation of the current research was the retrospective design with missing data on laboratory parameters in enrolled patients with KD who underwent MAST (Table 2).
Our knowledge of characteristics of the specific IgE involved in KD children remains only partial. Further prospective studies are needed to address the many remaining questions concerning this issue.

5. Conclusions

To the best of our knowledge, the results of this cohort study are the first to demonstrate basophils contributed to mite sensitization among KD patients. In addition, the age of KD diagnosis and CRP were associated with mite sensitization. This finding lends support to the monitoring of allergic diseases and associated specific IgE for KD patients with higher basophils. According to the current study, specific IgE for mites has shown its importance for KD over time. This is the first study that followed food and inhalant allergen sensitizations after KD. Further longitudinal prospective studies are warranted to clarify the unique profile of specific IgE in KD patients.

Supplementary Materials

The following supporting information can be downloaded at: https://www.mdpi.com/article/10.3390/children10071209/s1, Table S1: The sensitization pattern of allergens in patients with intravenous immunoglobulin (IVIG).

Author Contributions

Conceptualization, H.-C.K. and L.-S.C.; methodology, H.-C.K. and L.-S.C.; software, W.-L.F.; validation, H.-Y.C., Y.-H.H. and Z.-M.L.; formal analysis, W.-L.F. and L.-S.C.; investigation, H.-Y.C. and Y.-H.H.; resources, L.-S.C.; data curation, Z.-M.L.; writing—original draft preparation, L.-S.C.; writing—review and editing, H.-C.K.; visualization, H.-Y.C. and Z.-M.L.; supervision, Y.-H.H.; project administration, H.-C.K.; funding acquisition, H.-C.K. and L.-S.C. All authors have read and agreed to the published version of the manuscript.

Funding

This study was supported in part by Chang Gung Memorial Hospital (CFRPG8K0061, CMRPG8M1431, CMRPG8M1421, CMRPG8M1451, and CORPG8N0071) and the Ministry of Science and Technology, Taiwan (110-2635-B-182A-004). However, these institutions had no role in the study design, data collection and analysis, decision to publish, or preparation of the manuscript.

Institutional Review Board Statement

This retrospective study was reviewed and approved by our facility’s institutional review board in Kaohsiung, Taiwan (IRB number: 202001038B0; date of approval: 22 June 2020, Dynamic change of specific immunoglobulin E levels over time in allergic children).

Informed Consent Statement

Not applicable.

Data Availability Statement

Data is unavailable because the owner of this database is Chang Gung Memorial Hospital.

Acknowledgments

We would like to thank the Biostatistics Center, Kaohsiung Chang Gung Memorial Hospital, for statistics work.

Conflicts of Interest

The authors have no financial relationships to disclose pertaining to this article.

References

  1. Kumrah, R.; Vignesh, P.; Rawat, A.; Singh, S. Immunogenetics of Kawasaki disease. Clin. Rev. Allergy Immunol. 2020, 59, 122–139. [Google Scholar] [CrossRef] [PubMed]
  2. Valtuille, Z.; Lefevre-Utile, A.; Ouldali, N.; Beyler, C.; Boizeau, P.; Dumaine, C.; Felix, A.; Assad, Z.; Faye, A.; Melki, I.; et al. Calculating the fraction of Kawasaki disease potentially attributable to seasonal pathogens: A time series analysis. eClinicalMedicine 2023, 61, 102078. [Google Scholar] [CrossRef]
  3. Tang, R.B.; Hwang, B.T.; Tsai, L.C.; Lin, F.M.; Chang, H.N. The significance of mite antigens in Kawasaki disease. Chin. J. Microbiol. Immunol. 1987, 20, 29–36. [Google Scholar]
  4. Rigante, D.; Tarantino, G.; Valentini, P. Non-infectious makers of Kawasaki syndrome: Tangible or elusive triggers? Immunol. Res. 2016, 64, 51–54. [Google Scholar] [CrossRef]
  5. Chang, L.S.; Chen, K.D.; Huang, Y.H.; Kuo, H.C. Expression of Eosinophilic Subtype Markers in Patients with Kawasaki Disease. Int. J. Mol. Sci. 2022, 23, 10093. [Google Scholar] [CrossRef]
  6. Lei, W.T.; Hsu, C.W.; Chen, P.C.; Tseng, P.T.; Kuo, H.C.; Guo, M.M.; Tu, Y.K.; Lin, P.Y.; Kao, Y.H.; Chang, L.S. Increased Risk of Asthma and Allergic Rhinitis in Patients With a Past History of Kawasaki Disease: A Systematic Review and Meta-Analyses. Front. Pediatr. 2021, 9, 746856. [Google Scholar] [CrossRef]
  7. Chang, L.S.; Yu, H.R.; Chu, C.L.; Chen, K.D.; Huang, Y.H.; Guo, M.M.; Weng, K.P.; Kuo, H.C. Long-Term Hypermethylation of FcγR2B in Leukocytes of Patients with Kawasaki Disease. J. Clin. Med. 2021, 10, 2347. [Google Scholar] [CrossRef] [PubMed]
  8. Chalayer, E.; Gramont, B.; Zekre, F.; Goguyer-Deschaumes, R.; Waeckel, L.; Grange, L.; Paul, S.; Chung, A.W.; Killian, M. Fc receptors gone wrong: A comprehensive review of their roles in autoimmune and inflammatory diseases. Autoimmun. Rev. 2022, 21, 103016. [Google Scholar] [CrossRef]
  9. Kimata, H. High-dose intravenous gamma-globulin treatment for hyperimmunoglobulinemia E syndrome. J. Allergy Clin. Immunol. 1995, 95, 771–774. [Google Scholar] [CrossRef]
  10. Green, J.; Wardle, A.J.; Tulloh, R.M. Corticosteroids for the treatment of Kawasaki disease in children. Cochrane Database Syst. Rev. 2022, 5, Cd011188. [Google Scholar]
  11. Lei, W.T.; Chang, L.S.; Zeng, B.Y.; Tu, Y.K.; Uehara, R.; Matsuoka, Y.J.; Su, K.P.; Lee, P.C.; Cavalcante, J.L.; Stubbs, B.; et al. Pharmacologic interventions for Kawasaki disease in children: A network meta-analysis of 56 randomized controlled trials. EBioMedicine 2022, 78, 103946. [Google Scholar] [CrossRef]
  12. Broderick, C.; Kobayashi, S.; Suto, M.; Ito, S.; Kobayashi, T. Intravenous immunoglobulin for the treatment of Kawasaki disease. Cochrane Database Syst. Rev. 2023, 1, Cd014884. [Google Scholar] [PubMed]
  13. Kareva, L.; Mironska, K.; Stavric, K.; Hasani, A. Adverse Reactions to Intravenous Immunoglobulins-Our Experience. Open Access Maced. J. Med. Sci. 2018, 6, 2359–2362. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  14. Kim, J.J.; Kim, H.J.; Yu, J.J.; Yun, S.W.; Lee, K.Y.; Yoon, K.L.; Kil, H.R.; Kim, G.B.; Han, M.K.; Song, M.S.; et al. IgA Levels Are Associated with Coronary Artery Lesions in Kawasaki Disease. Korean Circ. J. 2021, 51, 267–278. [Google Scholar] [CrossRef] [PubMed]
  15. Miyata, K.; Kawakami, K.; Onimaru, T.; Baba, Y.; Ono, S.; Hokonohara, M.; Yoshinaga, M.; Terawaki, T. Circulating immune complexes and granulocytes chemotaxis in Kawasaki disease. Jpn. Circ. J. 1984, 48, 1350–1353. [Google Scholar] [CrossRef]
  16. Chang, L.S.; Chen, Y.J.; Huang, P.Y.; Chen, K.D.; Lo, M.H.; Huang, Y.H.; Guo, M.M.; Kuo, H.C. Significantly Lower Immunoglobulin M Levels 6 Months After Disease Onset in Patients With Kawasaki Disease With Coronary Artery Lesions. J. Am. Heart Assoc. 2021, 10, e020505. [Google Scholar] [CrossRef] [PubMed]
  17. Kusakawa, S.; Heiner, D.C. Elevated levels of immunoglobulin E in the acute febrile mucocutaneous lymph node syndrome. Pediatr. Res. 1976, 10, 108–111. [Google Scholar] [CrossRef] [Green Version]
  18. Shen, J.; Ding, Y.; Yang, Z.; Zhang, X.; Zhao, M. Effects of changes on gut microbiota in children with acute Kawasaki disease. PeerJ 2020, 8, e9698. [Google Scholar] [CrossRef]
  19. Tu, Y.L.; Chang, S.W.; Tsai, H.J.; Chen, L.C.; Lee, W.I.; Hua, M.C.; Cheng, J.H.; Ou, L.S.; Yeh, K.W.; Huang, J.L.; et al. Total serum IgE in a population-based study of Asian children in Taiwan: Reference value and significance in the diagnosis of allergy. PLoS ONE 2013, 8, e80996. [Google Scholar] [CrossRef]
  20. Lindquist, M.E.; Hicar, M.D. B Cells and Antibodies in Kawasaki Disease. Int. J. Mol. Sci. 2019, 20, 1834. [Google Scholar] [CrossRef] [Green Version]
  21. Chiu, C.Y.; Huang, Y.L.; Tsai, M.H.; Tu, Y.L.; Hua, M.C.; Yao, T.C.; Yeh, K.W.; Huang, J.L. Sensitization to food and inhalant allergens in relation to atopic diseases in early childhood: A birth cohort study. PLoS ONE 2014, 9, e102809. [Google Scholar] [CrossRef] [PubMed]
  22. Hamizan, A.W.; Alvarado, R.; Arifin, K.T.; Zahedi, F.D.; Sian, N.C.; Jumaat, A.F.; Husain, S.; Wong, M.S. Mucosal brushings for nasal specific IgE to predict house dust mite driven allergic rhinitis. Asian Pac. J. Allergy Immunol. 2023. [Google Scholar] [CrossRef]
  23. Lee, H.J.; Tsai, H.J.; Huang, H.Y.; Gau, C.C.; Ho, C.H.; Huang, J.L.; Yao, T.C. Cord blood IgE predicts allergic sensitization, elevation of exhaled nitric oxide, and asthma in schoolchildren. Pediatr. Allergy Immunol. Off. Publ. Eur. Soc. Pediatr. Allergy Immunol. 2022, 33, e13838. [Google Scholar] [CrossRef] [PubMed]
  24. Chang, L.S.; Chang, H.Y.; Yang, Y.H.; Lee, Z.M.; Guo, M.M.; Huang, Y.H.; Kuo, H.C. Allergen Tests of Fruit Sensitization Involving Children with Allergic Diseases. Children 2022, 9, 470. [Google Scholar] [CrossRef]
  25. Shao, S.C.; Chan, Y.Y.; Kao Yang, Y.H.; Lin, S.J.; Hung, M.J.; Chien, R.N.; Lai, C.C.; Lai, E.C. The Chang Gung Research Database-A multi-institutional electronic medical records database for real-world epidemiological studies in Taiwan. Pharmacoepidemiol. Drug Saf. 2019, 28, 593–600. [Google Scholar] [CrossRef]
  26. Chang, H.Y.; Lee, Z.M.; Chang, L.S.; Feng, W.L.; Yang, Y.H.; Ou-Yang, M.C. Perinatal Characteristics and the Sensitization to Cow Milk, Egg Whites and Wheat in Children up to 3 Years of Age. Children 2023, 10, 860. [Google Scholar] [CrossRef] [PubMed]
  27. Taubert, K.A.; Shulman, S.T. Kawasaki disease. Am. Fam. Physician 1999, 59, 3093–3102, 3107–3108. [Google Scholar]
  28. Su, Y.T.; Yang, Y.N.; Li, Y.C.; Tsai, C.C.; Chen, L.M.; Lin, Y.C.; Niu, C.K.; Tsai, Y.C. Age-dependent distribution of the atopic phenotype and allergen sensitization among asthmatic children in southern Taiwan. Asian Pac. J. Allergy Immunol. 2016, 34, 206–211. [Google Scholar]
  29. Wu, C.Y.; Huang, H.Y.; Pan, W.C.; Liao, S.L.; Hua, M.C.; Tsai, M.H.; Lai, S.H.; Yeh, K.W.; Chen, L.C.; Huang, J.L.; et al. Allergic diseases attributable to atopy in a population sample of Asian children. Sci. Rep. 2021, 11, 16052. [Google Scholar] [CrossRef]
  30. Su, K.W.; Chiu, C.Y.; Tsai, M.H.; Liao, S.L.; Chen, L.C.; Hua, M.C.; Yao, T.C.; Huang, J.L.; Yeh, K.W. Asymptomatic toddlers with house dust mite sensitization at risk of asthma and abnormal lung functions at age 7 years. World Allergy Organ. J. 2019, 12, 100056. [Google Scholar] [CrossRef]
  31. Ying, X.; Qi, X.; Yin, Y.; Wang, H.; Zhang, H.; Jiang, H.; Yang, L.; Wu, J. Allergens sensitization among children with allergic diseases in Shanghai, China: Age and sex difference. Respir. Res. 2022, 23, 95. [Google Scholar] [CrossRef]
  32. Calzada, D.; Cremades-Jimeno, L.; López-Ramos, M.; Cárdaba, B. Peptide Allergen Immunotherapy: A New Perspective in Olive-Pollen Allergy. Pharmaceutics 2021, 13, 1007. [Google Scholar] [CrossRef]
  33. Matsuda, A.; Ebihara, N.; Yokoi, N.; Okayama, Y.; Watanabe, Y.; Kawasaki, S.; Tanioka, H.; Walls, A.F.; Hamuro, J.; Kinoshita, S.; et al. Basophils in the giant papillae of chronic allergic keratoconjunctivitis. Br. J. Ophthalmol. 2010, 94, 513–518. [Google Scholar] [CrossRef]
  34. Glode, M.P.; Brogden, R.; Joffe, L.S.; Adinoff, A.; Leung, D.Y.; Burns, J.C.; Arlian, L.G. Kawasaki syndrome and house dust mite exposure. Pediatr. Infect. Dis. 1986, 5, 644–648. [Google Scholar] [CrossRef]
  35. Lee, S.B.; Kim, Y.H.; Hyun, M.C.; Kim, Y.H.; Kim, H.S.; Lee, Y.H. T-Helper Cytokine Profiles in Patients with Kawasaki Disease. Korean Circ. J. 2015, 45, 516–521. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  36. Tsai, Y.J.; Lin, C.H.; Fu, L.S.; Fu, Y.C.; Lin, M.C.; Jan, S.L. The association between Kawasaki disease and allergic diseases, from infancy to school age. Allergy Asthma Proc. 2013, 34, 467–472. [Google Scholar] [CrossRef] [PubMed]
  37. Burns, J.C.; Shimizu, C.; Shike, H.; Newburger, J.W.; Sundel, R.P.; Baker, A.L.; Matsubara, T.; Ishikawa, Y.; Brophy, V.A.; Cheng, S.; et al. Family-based association analysis implicates IL-4 in susceptibility to Kawasaki disease. Genes Immun. 2005, 6, 438–444. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  38. Ghosh, P.; Katkar, G.D.; Shimizu, C.; Kim, J.; Khandelwal, S.; Tremoulet, A.H.; Kanegaye, J.T.; Bocchini, J.; Das, S.; Burns, J.C.; et al. An Artificial Intelligence-guided signature reveals the shared host immune response in MIS-C and Kawasaki disease. Nat. Commun. 2022, 13, 2687. [Google Scholar] [CrossRef]
  39. Hwang, C.Y.; Hwang, Y.Y.; Chen, Y.J.; Chen, C.C.; Lin, M.W.; Chen, T.J.; Lee, D.D.; Chang, Y.T.; Wang, W.J.; Liu, H.N. Atopic diathesis in patients with Kawasaki disease. J. Pediatr. 2013, 163, 811–815. [Google Scholar] [CrossRef]
  40. Daniels, L.B.; Roberts, S.; Moreno, E.; Tremoulet, A.H.; Gordon, J.B.; Burns, J.C. Long-term health outcomes in young adults after Kawasaki disease. Int. J. Cardiol. Heart Vasc. 2022, 40, 101039. [Google Scholar] [CrossRef]
  41. Wang, Y.; Wang, W.; Gong, F.; Fu, S.; Zhang, Q.; Hu, J.; Qi, Y.; Xie, C.; Zhang, Y. Evaluation of intravenous immunoglobulin resistance and coronary artery lesions in relation to Th1/Th2 cytokine profiles in patients with Kawasaki disease. Arthritis Rheum. 2013, 65, 805–814. [Google Scholar] [CrossRef] [PubMed]
  42. Ostergaard, P.A.; Ebbesen, F.; Nolte, H.; Skov, P.S. Basophil histamine release in the diagnosis of house dust mite and dander allergy of asthmatic children. Comparison between prick test, RAST, basophil histamine release and bronchial provocation. Allergy 1990, 45, 231–235. [Google Scholar] [CrossRef] [PubMed]
  43. Li, Y.; Liu, C.; Li, H.; Wang, X. Exploring the role of basophil activation test in diagnosis of Dermatophagoides farinae sensitization and evaluation of therapeutic efficacy of subcutaneous immunotherapy in children. Scand. J. Immunol. 2022, 96, e13168. [Google Scholar] [CrossRef] [PubMed]
  44. Chien, S.J.; Hsieh, Y.J.; Shih, Y.L.; Tseng, Y.J. Clinical characteristics and outcomes of mixed virus or bacterial infection in children with laboratory-confirmed influenza infection. J. Formos. Med. Assoc. 2022, 121, 2074–2084. [Google Scholar] [CrossRef] [PubMed]
  45. Chan, C.C.; Lee, K.T.; Ho, W.J.; Chan, Y.H.; Chu, P.H. Levosimendan use in patients with acute heart failure and reduced ejection fraction with or without severe renal dysfunction in critical cardiac care units: A multi-institution database study. Ann. Intensive Care 2021, 11, 27. [Google Scholar] [CrossRef]
  46. Lin, I.H.; Tsai, M.C.; Chen, J.P.; Fu, L.S. Allergic children with extremely high total IgE but no allergen identified in the initial screening panel. J. Microbiol. Immunol. Infect. 2021, 54, 474–481. [Google Scholar] [CrossRef]
Figure 1. The study design of enrollment for the process of inclusion and exclusion of subjects. CGRD, Chang Gung Research Database; IVIG, intravenous immunoglobulin; KD, Kawasaki disease; MAST, multiple allergen simultaneous tests system; N, number; y/o, years old.
Figure 1. The study design of enrollment for the process of inclusion and exclusion of subjects. CGRD, Chang Gung Research Database; IVIG, intravenous immunoglobulin; KD, Kawasaki disease; MAST, multiple allergen simultaneous tests system; N, number; y/o, years old.
Children 10 01209 g001
Table 1. Clinical data of the subjects in this study.
Table 1. Clinical data of the subjects in this study.
IVIGNumberAge at Diagnosis of KD
(Years Old)
Age at the Time of Specific IgE Test
(Years Old)
Days between KD Diagnosis and Specific IgE TestFemale/Male
only one dose3931.5 ± 1.25.8 ± 4.01570.2 ± 1462.7140/253
two or three doses601.6 ± 1.16.4 ± 4.51579.0 ± 1565.323/37
p value 0.7760.3240.3570.684
IgE, immunoglobulin E; IVIG, intravenous immunoglobulin; KD, Kawasaki disease.
Table 2. The sensitization of mites and laboratory parameters before (A,B) and (C,D) after intravenous immunoglobulin treatment in patients with Kawasaki disease. Combining specific immunoglobulin E of Dermatophagoides farina and pteronyssinus in Table 2E,F.
Table 2. The sensitization of mites and laboratory parameters before (A,B) and (C,D) after intravenous immunoglobulin treatment in patients with Kawasaki disease. Combining specific immunoglobulin E of Dermatophagoides farina and pteronyssinus in Table 2E,F.
(A)
Specific IgE for Dermatophagoides Farina
Before IVIGNNegativePositivep Value
WBC 103/μL42413.8 ± 5.014.0 ± 5.20.772
PLATELET 103/μL424349.0 ± 134.9377.1 ± 143.10.676
HGB g/dL42411.0 ± 1.111.0 ± 1.20.826
CRP mg/L42480.9 ± 65.386.6 ± 72.60.401
NEUTROPHILS %42556.5 ± 15.660.0 ± 14.20.040 *
LYMPHOCYTE %42532.1 ± 14.429.1 ± 12.60.060
MONOCYTE %4256.5 ± 3.35.9 ± 2.90.098
EOSINOPHIL %4173.2 ± 3.13.4 ± 2.90.426
BASOPHIL %4030.2 ± 0.30.3 ± 0.40.010 *
ALB g/dL3573.8 ± 0.53.7 ± 0.50.125
ALT U/L39973.3 ± 100.473.3 ± 100.50.996
AST U/L40063.8 ± 87.869.1 ± 100.30.585
ESR mm/h20253.4 ± 24.452.6 ± 25.90.840
(B)
Specific IgE for Dermatophagoides Pteronyssinus
Before IVIGNNegativePositivep Value
WBC 103/μL42413.8 ± 5.113.9 ± 5.20.908
PLATELET 103/μL424351.7 ± 135.6373.1 ± 143.00.250
HGB g/dL42411.0 ± 1.110.9 ± 1.20.864
CRP mg/L42479.6 ± 64.588.8 ± 73.60.181
NEUTROPHILS %42556.4 ± 15.360.2 ± 14.60.024 *
LYMPHOCYTE %42532.2 ± 14.129.0 ± 13.10.044 *
MONOCYTE %4256.6 ± 3.35.7 ± 2.70.004 *
EOSINOPHIL %4173.1 ± 3.13.5 ± 2.90.172
BASOPHIL %4030.2 ± 0.30.3 ± 0.40.018 *
ALB g/dL3573.8 ± 0.53.6 ± 0.60.045 *
ALT U/L39975.9 ± 105.268.5 ± 90.90.894
AST U/L40065.7 ± 89.865.7 ± 97.40.997
(C)
Specific IgE for Dermatophagoides Farina
After IVIGNNegativePositivep Value
WBC 103/μL38910.5 ± 4.910.7 ± 4.40.772
PLATELET 103/μL389471.3 ± 175.0463.8 ± 161.80.676
HGB g/dL38910.7 ± 1.110.6 ± 1.20.826
CRP mg/L36726.3 ± 29.035.6 ± 38.30.030 *
NEUTROPHILS %38836.2 ± 16.638.6 ± 16.80.181
LYMPHOCYTE %38850.0 ± 15.948.5 ± 15.80.358
MONOCYTE %3887.5 ± 3.47.2 ± 2.90.346
EOSINOPHIL %3853.8 ± 3.14.3 ± 3.60.352
BASOPHIL %3690.3 ± 0.40.4 ± 0.50.022 *
ALB g/dL2733.4 ± 0.43.3 ± 0.50.125
ALT U/L31348.8 ± 64.850.0 ± 98.60.996
AST U/L31455.1 ± 68.646.2 ± 49.40.392
ESR mm/h10768.8 ± 33.172.0 ± 36.70.840
(D)
Specific IgE for Dermatophagoides Pteronyssinus
After IVIGNNegativePositivep Value
WBC 103/μL38910.5 ± 4.910.6 ± 4.30.908
Platelet 103/μL389473.0 ± 174.4450.1 ± 162.20.481
HGB g/dL38910.7 ± 1.110.7 ± 1.20.896
CRP mg/L36726.4 ± 29.236.0 ± 38.40.028 *
Neutrophils %38835.9 ± 16.839.2 ± 16.40.066
Lymphocyte %38850.3 ± 16.047.7 ± 15.50.122
Monocyte %3887.5 ± 3.57.2 ± 2.80.284
Eosinophil %3853.8 ± 3.14.4 ± 3.60.172
Basophil %3690.3 ± 0.40.4 ± 0.50.073
ALB G/DL2733.4 ± 0.43.2 ± 0.50.018 *
ALT U/L31349.5 ± 64.448.0 ±100.90.894
AST U/L31455.4 ± 68.244.9 ± 49.40.260
(E)
Specific IgE for Dermatophagoides Farina or Pteronyssinus
Before IVIGNNegativePositivep Value
WBC 103/μL42413.8 ± 5.013.9 ± 5.20.911
Platelet 103/μL424350.4 ± 134.2373.7 ± 144.20.182
HGB g/dL42411.0 ± 1.111.0 ± 1.20.941
CRP mg/L42480.9 ± 64.786.2 ± 73.00.431
Neutrophils %42556.4 ± 15.559.9 ± 14.40.040 *
Lymphocyte %42532.1 ± 14.229.3 ± 13.00.078
Monocyte %4256.6 ± 3.35.9 ± 2.90.052
Eosinophil %4173.2 ± 3.13.3 ± 2.90.568
Basophil %4030.2 ± 0.20.3 ± 0.40.008 *
ALB g/dL3573.8 ± 0.53.7 ± 0.60.138
ALT U/L39974.7 ± 101.671.0 ± 98.30.933
AST U/L40064.7 ± 89.067.4 ± 98.00.779
ESR mm/h20253.9 ± 24.151.7 ± 26.20.716
(F)
Specific IgE for Dermatophagoides Farina or Pteronyssinus
After IVIGNNegativePositivep Value
WBC 103/μL38910.5 ± 4.910.6 ± 4.40.911
Platelet 103/μL389472.8 ± 176.0461.4 ± 160.20.525
HGB g/dL38910.7 ± 1.110.7 ± 1.20.941
CRP mg/L36726.4 ± 29.235.2 ± 37.80.040 *
Neutrophils %38836.2 ± 16.738.6 ± 16.60.156
Lymphocyte %38850.1 ± 15.948.3 ± 15.70.278
Monocyte %3887.5 ± 3.57.2 ± 2.90.403
Eosinophil %3853.8 ± 3.14.3 ± 3.60.430
Basophil %3690.3 ± 0.40.4 ± 0.50.037 *
ALB g/dL2733.4 ± 0.43.3 ± 0.50.138
ALT U/L31349.4 ± 65.348.5 ± 96.80.933
AST U/L31455.4 ± 69.245.9 ± 48.50.326
ESR mm/h10769.1 ± 33.571.5 ± 36.10.716
ALB, albumin; ALT, alanine aminotransferase; AST, aspartate transaminase; CRP, C-reactive protein; ESR, erythrocyte sedimentation rate; HGB, hemoglobulin; IVIG, intravenous immunoglobulin; WBC, white blood cells. * statistically significant results (p < 0.05).
Table 3. Age at diagnosis of Kawasaki disease and the most common allergens.
Table 3. Age at diagnosis of Kawasaki disease and the most common allergens.
Number (%)≤2 Year-Old>2 Year-Oldp Value
Dermatophagoides Farina or Pteronyssinusnegative269 (59.4)246 (61.2)23 (45.1)0.028 *
positive184 (40.6)156 (38.8)28 (54.9)
House-Dustnegative357 (78.8)320 (79.6)37 (72.5)0.246
positive96 (21.2)82 (20.4)14 (27.5)
Cockroach Mixnegative383 (84.5)343 (85.3)40 (78.4)0.200
positive70 (15.5)59 (14.7)11 (21.6)
Beefnegative385 (85)343 (85.3)42 (82.4)0.576
positive68 (15)59 (14.7)9 (17.6)
Shrimpnegative399 (88.1)355 (88.3)44 (86.3)0.673
positive54 (11.9)47 (11.7)7 (13.7)
* statistically significant results (p < 0.05).
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Chang, L.-S.; Huang, Y.-H.; Chang, H.-Y.; Lee, Z.-M.; Feng, W.-L.; Kuo, H.-C. Basophils Predict Mite Sensitization in Patients with Kawasaki Disease. Children 2023, 10, 1209. https://doi.org/10.3390/children10071209

AMA Style

Chang L-S, Huang Y-H, Chang H-Y, Lee Z-M, Feng W-L, Kuo H-C. Basophils Predict Mite Sensitization in Patients with Kawasaki Disease. Children. 2023; 10(7):1209. https://doi.org/10.3390/children10071209

Chicago/Turabian Style

Chang, Ling-Sai, Ying-Hsien Huang, Hsin-Yu Chang, Zon-Min Lee, Wei-Ling Feng, and Ho-Chang Kuo. 2023. "Basophils Predict Mite Sensitization in Patients with Kawasaki Disease" Children 10, no. 7: 1209. https://doi.org/10.3390/children10071209

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