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Shotgun Lipidomics of Rodent Tissues
Published on: November 18, 2022
Lipidomics links oxidized phosphatidylcholines and coronary arteritis in Kawasaki disease
Yasutaka Nakashima1, Yasunari Sakai1, Yumi Mizuno2
1Department of Pediatrics, Graduate School of Medical Sciences, Kyushu University, 3-1-1 Maidashi, Higashi-ku, Fukuoka 812-8582, Japan.
Insights
Oxidized phospholipids in Kawasaki disease (KD) patients are linked to coronary arteritis. This study identified specific oxidized phosphatidylcholines (PCs) associated with this severe complication, suggesting their role in KD pathogenesis.
Area of Science:
- Biochemistry
- Immunology
- Pediatric Cardiology
Background:
- Kawasaki disease (KD) is the primary cause of childhood systemic vasculitis.
- Coronary arteritis is a critical complication of KD, potentially leading to severe cardiac issues.
- The molecular mechanisms driving coronary arteritis in KD remain incompletely understood.
Purpose of the Study:
- To identify key molecules involved in the development of coronary arteritis in KD patients.
- To investigate the role of oxidized phospholipids in KD pathogenesis.
Main Methods:
- Prospective recruitment of 105 KD patients and 65 controls in Japan (2015-2018).
- Serum lipidomics analysis using liquid chromatography-mass spectrometry (LC-MS).
- Tandem MS/MS analysis to identify molecular structures and confirm oxidized phosphatidylcholines (PCs).
Main Results:
- 28 molecules were consistently found in KD patients but not controls.
- Two specific oxidized PCs (m/z: 822.55 and 834.59) were significantly associated with acute-stage coronary arteritis.
- Elevated levels of LOX-1 ligand containing apolipoprotein B were observed in KD patients.
Conclusions:
- Inflammatory signals triggered by oxidized phospholipids may play a crucial role in KD coronary arteritis.
- Oxidized PCs show potential as biomarkers for predicting coronary arteritis development in KD.
- Further research is needed to validate these findings in diverse populations.
Aims:
Coronary arteritis is a life-threatening complication that may arise in the acute stage of Kawasaki disease (KD), the leading cause of systemic vasculitis in childhood. Various microorganisms and molecular pathogens have been reported to cause KD. However, little is known about the key molecules that contribute to the development of coronary arteritis in KD.
Methods And Results:
To identify causative molecules for coronary arteritis in KD, we prospectively recruited 105 patients with KD and 65 disease controls in four different parts of Japan from 2015 to 2018. During this period, we conducted lipidomics analyses of their sera using liquid chromatography-mass spectrometry (LC-MS). The comprehensive LC-MS system detected a total of 27 776 molecules harbouring the unique retention time and m/z values. In the first cohort of 57 KD patients, we found that a fraction of these molecules showed enrichment patterns that varied with the sampling region and season. Among them, 28 molecules were recurrently identified in KD patients but not in controls. The second and third cohorts of 48 more patients with KD revealed that these molecules were correlated with inflammatory markers (leucocyte counts and C-reactive proteins) in the acute stage. Notably, two of these molecules (m/z values: 822.55 and 834.59) were significantly associated with the development of coronary arteritis in the acute stage of KD. Their fragmentation patterns in the tandem MS/MS analysis were consistent with those of oxidized phosphatidylcholines (PCs). Further LC-MS/MS analysis supported the concept that reactive oxygen species caused the non-selective oxidization of PCs in KD patients. In addition, the concentrations of LOX-1 ligand containing apolipoprotein B in the plasma of KD patients were significantly higher than in controls.
Conclusion:
These data suggest that inflammatory signals activated by oxidized phospholipids are involved in the pathogenesis of coronary arteritis in KD. Because the present study recruited only Japanese patients, further examinations are required to determine whether oxidized PCs might be useful biomarkers for the development of coronary arteritis in broad populations of KD.
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