The Treatment Strategies for Kawasaki Disease without Response to Intravenous Immunoglobulin (IVIG)

Authors

  • Yitian Wang
  • Xinming Zhou
  • Kehan Zhu

DOI:

https://doi.org/10.61173/wynd3212

Keywords:

Kawasaki disease, IVIG resistance, treatment strategies, vasculitis

Abstract

Background: Kawasaki Disease (KD) is an acute vasculitis that occurs predominantly in children. The standard treatment is initial therapy with intravenous immunoglobulin (IVIG), but some patients develop resistance to IVIG, which increases their risk of developing coronary artery lesions. This review aims to analyze and summarize the causes and pathological mechanisms of IVIG resistance, as well as other treatment strategies. Results: Studies have found that IVIG resistance is mediated by multiple factors including genetic susceptibility, immune dysregulation, and changes in vascular endothelial cell characteristics, with persistently elevated pro-inflammatory cytokines as the core manifestation. Second-dose IVIG, glucocorticoids, and infliximab as second-line treatments each have their advantages and disadvantages. A second IVIG dose is currently the preferred treatment for IVIG non-responders in KD, while infliximab is more effective in controlling fever and coronary inflammation. Combination therapy may be a better option. However, existing predictive models remain limited, with obvious heterogeneity in clinical data. Conclusion: The pathogenesis of Kawasaki disease remains unclear. Current treatment options still carry risks and controversies. Further experimental research is needed to elucidate resistance mechanisms, construct predictive models, conduct heterogeneous experiments, and promote international collaboration to achieve breakthroughs in the treatment of this disease.

References

[1] Wu Z C, Pan Y. Research on gamma globulin unresponsive Kawasaki disease: a review[J]. World Journal of Clinical Pediatrics, 2025, 14(4): 108520.

[2] Rife E, Gedalia A. Kawasaki disease: an update[J]. Current Rheumatology Reports, 2020, 22(10): 75.

[3] Fang X. The clinical value of dynamic monitoring of complete blood count in predicting immunoglobulin resistance in Chinese children with Kawasaki disease[J]. Scientific Reports, 2025, 15(1): 18041.

[4] Seki M, Minami T. Kawasaki disease: pathology, risks, and management[J]. Vascular Health and Risk Management, 2022, 18: 407-416.

[5] McCrindle B W, Rowley A H, Newburger J W, et al. Diagnosis, treatment, and long-term management of Kawasaki disease: a scientific statement for health professionals from the American Heart Association[J]. Circulation, 2017, 135(17): e927-e999.

[6] Noval Rivas M, Arditi M. Kawasaki disease: pathophysiology and insights from mouse models[J]. Nature Reviews Rheumatology, 2020, 16(7): 391-405.

[7] Yu H, Lin Y, Xu Y, et al. Association between Rab31/ rs9965664 polymorphism and immunoglobulin therapy resistance in patients with Kawasaki disease[J]. Frontiers in Cardiovascular Medicine, 2022, 9: 944508.

[8] Wang S, Qian G, Liu Y, et al. Kawasaki disease: insights into the roles of T cells[J]. Frontiers in Immunology, 2025, 16: 1582638.

[9] Sun Y, Liu L, Yang R. PTX3 promotes IVIG resistanceinduced endothelial injury in Kawasaki disease by regulating the NF-κB pathway[J]. Open Life Sciences, 2023, 18(1): 20220735.

[10] Jone P N, Tremoulet A, Choueiter N, et al. Update on diagnosis and management of Kawasaki disease: a scientific statement from the American Heart Association[J]. Circulation, 2024, 150(23): e481-e500.

[11] Li S, Zhou Y, Wen Y, et al. Role of pyroptosis in IVIG- resistant Kawasaki disease and the establishment of a new predictive model[J]. Journal of Inflammation Research, 2024, Dean&Francis ISSN 2959-409X 17: 10999-11008.

[12] Yang M, Zhang M, Wang H, et al. Risk factors for nonresponse to initial IVIG plus methylprednisolone therapy in children with Kawasaki disease[J]. Rheumatology, 2025, 64(8): 4607-4613.

[13] Kobayashi T, Saji T, Otani T, et al. Efficacy of immunoglobulin plus prednisolone for prevention of coronary artery abnormalities in severe Kawasaki disease (RAISE study): a randomised, open-label, blinded-endpoints trial[J]. Lancet, 2012, 379(9826): 1613-1620.

[14] Burns J C, Roberts S C, Tremoulet A H, et al. Infliximab versus second intravenous immunoglobulin for treatment of resistant Kawasaki disease in the USA (KIDCARE): a randomised, multicentre comparative effectiveness trial[J]. Lancet Child & Adolescent Health, 2021, 5(12): 852-861.

[15] Schmidt J, Hotz H G, Foitzik T, et al. Intravenous contrast medium aggravates the impairment of pancreatic microcirculation in necrotizing pancreatitis in the rat[J]. Annals of Surgery, 1995, 221(3): 257-264.

[16] Ling J, Xie F, Zhou Q, et al. Case series on the efficacy and safety of tocilizumab in IVIG-resistant Kawasaki disease: a retrospective analysis of five patients[J]. Journal of Inflammation Research, 2024, 17: 10991-10998.

[17] Sleeper L A, Minich L L, McCrindle B M, et al. Evaluation of Kawasaki disease risk-scoring systems for intravenous immunoglobulin resistance[J]. Journal of Pediatrics, 2011, 158(5): 831-835.e3.

[18] Hsu W F, Lee P C, Lin Y H, et al. Evaluating the lowest post-IVIG body temperature as a predictor of treatment response in Kawasaki disease[J]. Journal of Pediatric Health Care, 2025, 39(6): 935-943.

[19] Amirsardari Z, Moghadam E A, Mohebbi A, et al. Metabolomic profiling for predicting coronary artery aneurysms and IVIG resistance in Kawasaki disease: an exploratory study[J]. Journal of Cardiovascular Translational Research, 2025, 18(4): 951-959.

Downloads

Published

2026-08-13