Cytokine cascade in Kawasaki disease versus Kawasaki-like syndrome

M A Bordea1, C Costache, A Grama

  • 1Emergency Hospital for Children, Cluj-Napoca, Romania; Department of Immunology, Iuliu Hatieganu University of Medicine and Pharmacy, Cluj-Napoca, Romania. Gabriel.Samasca@umfcluj.ro and Department of Public Health and Hygiene, Faculty of Medicine, P. J. Šafárik University, Košice, Slovak Republic. kvetoslava.rimarova@upjs.sk.

Physiological Research
|January 19, 2022
PubMed

Insights

Kawasaki disease (KD) is a vasculitis in young children. Advances reveal genetic, infectious, and autoimmune factors, with cytokines playing a key role. COVID-19 may trigger similar syndromes, complicating diagnosis and treatment.

Area of Science:

  • Pediatric Rheumatology
  • Immunology
  • Cardiology

Background:

  • Kawasaki disease (KD) is a vasculitis affecting medium-sized vessels, primarily in children under five.
  • Cardiovascular complications like coronary artery aneurysms and myocarditis are common, often linked to hypercytokinemia.
  • The exact etiopathogenesis of KD remains unclear, with ongoing research into genetic, infectious, and autoimmune factors.

Purpose of the Study:

  • To review recent advances in the pathophysiology of Kawasaki disease.
  • To synthesize current understanding of treatment options for KD.
  • To explore the relationship between KD and COVID-19-associated inflammatory syndromes.

Main Methods:

  • Literature review synthesizing recent findings on KD pathophysiology.
  • Analysis of identified susceptibility genes and cytokines in KD pathogenesis.
  • Comparison of KD with COVID-19-induced multisystem inflammatory syndromes.

Main Results:

  • Genetic, infectious, and autoimmune factors are implicated in KD pathogenesis.
  • Specific genes (e.g., caspase 3) and cytokines (e.g., IL-6, TNF-alpha) are associated with KD and KD shock syndrome.
  • COVID-19 can trigger Kawasaki-like syndromes (MIS-C/PIMS-TS), sharing inflammatory characteristics with KD, though the cytokine role is debated.
  • Antiendothelial cell autoantibodies and immunothrombosis are potential pathogenic mechanisms.

Conclusions:

  • KD pathogenesis involves a complex interplay of genetic predisposition, potential infections, and autoimmunity, with significant cytokine involvement.
  • COVID-19-associated syndromes present challenges due to similarities with KD, necessitating further research into their shared and distinct pathogenic pathways.
  • The diagnosis and treatment of KD and similar syndromes remain challenging due to the lack of definitive protocols and a complete understanding of their mechanisms.

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