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Published on: May 10, 2024
Pathophysiology of hypereosinophilia-associated heart disease
Insights
Eosinophils are essential for causing heart damage in hypereosinophilia-associated heart disease. Other immune cells like myeloid cells, granulocytes, and T-cells also contribute to the disease process.
Area of Science:
- Immunology
- Cardiology
- Pathophysiology
Background:
- Hypereosinophilia can lead to severe cardiac complications, but the underlying mechanisms of eosinophilic inflammation-induced heart damage remain unclear.
- Understanding these mechanisms is crucial for developing effective treatments for hypereosinophilia-associated heart disease.
Purpose of the Study:
- To investigate the role of eosinophils in hypereosinophilia-associated heart disease.
- To elucidate the cellular and molecular mechanisms driving cardiac damage in this condition.
Main Methods:
- A mouse model of hypereosinophilia-associated heart disease was established using cardiac myosin heavy chain peptide.
- Disease outcomes were assessed via histology, immunohistochemistry, flow cytometry, and peripheral blood analysis.
- Single-cell RNA sequencing was employed to analyze cardiac immune cell composition and gene expression.
Main Results:
- Mice exposed to myocarditic peptide developed eosinophil-rich heart inflammation and cardiomyocyte damage, contingent on eosinophil presence.
- Single-cell RNA sequencing revealed enrichment of myeloid cells, T-cells, neutrophils, and eosinophils in affected hearts.
- Activated eosinophils and M2-skewed macrophages were observed, with identified pathways implicated in disease pathophysiology.
Conclusions:
- Eosinophils are indispensable for cardiac damage in hypereosinophilia-associated heart disease.
- Myeloid cells, granulocytes, and T-cells play cooperative or independent roles in the pathogenesis of this disease.
Background:
Cardiac complications in patients with hypereosinophilia cause significant morbidity and mortality. However, mechanisms of how eosinophilic inflammation causes heart damage are poorly understood.
Methods:
We developed a model of hypereosinophilia-associated heart disease by challenging hypereosinophilic mice with peptide from the cardiac myosin heavy chain. Disease outcomes were measured by histology, immunohistochemistry, flow cytometry, and measurement of cells and biomarkers in peripheral blood. Eosinophil dependence was determined by using eosinophil-deficient mice (ΔdblGATA). Single cells from heart were subjected to single cell RNA sequencing to assess cell composition, subtypes and expression profiles.
Results:
Mice challenged with myocarditic and control peptide had peripheral blood leukocytosis, but only those challenged with myocarditic peptide had heart inflammation. Heart tissue was infiltrated by eosinophil-rich inflammatory infiltrates associated with cardiomyocyte damage. Disease penetrance and severity were dependent on the presence of eosinophils. Single cell RNA sequencing showed enrichment of myeloid cells, T-cells and granulocytes (neutrophils and eosinophils) in the myocarditic mice. Macrophages were M2 skewed, and eosinophils had an activated phenotype. Gene enrichment analysis identified several pathways potentially involved in pathophysiology of disease.
Conclusion:
Eosinophils are required for heart damage in hypereosinophilia-associated heart disease. Additionally, myeloid cells, granulocytes and T-cell cooperatively or independently participate in the pathogenesis of hypereosinophilia-associated heart disease.
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