Tissue degrading and remodelling molecules in giant cell arteritis
Nobumasa Watanabe1, Yuichiro Hara1, Yasumasa Nishito2
1Research Center for Genome & Medical Sciences, Tokyo Metropolitan Institute of Medical Science, Tokyo, Japan.
Insights
Giant cell arteritis (GCA) molecular pathology was explored using gene expression profiling. Novel molecules like MMP12 and LRRC15 were identified in GCA lesions, aiding understanding and targeted therapies.
Area of Science:
- Vascular Biology
- Immunopathology
- Molecular Medicine
Background:
- Giant cell arteritis (GCA) is a large vessel granulomatous vasculitis characterized by intimal occlusion and media destruction.
- Histopathology reveals intimal hypertrophy, T cell and macrophage infiltration, and multinucleated giant cells (MNGCs).
- The molecular underpinnings of GCA pathogenesis remain largely undefined.
Purpose of the Study:
- To elucidate the molecular pathology of GCA.
- To identify key molecules and pathways involved in GCA pathogenesis.
Main Methods:
- Genome-wide gene expression profiling of temporal artery biopsies from 16 treatment-naive GCA patients.
- Immunohistochemistry was used to validate findings for specific molecules.
Main Results:
- Gene expression profiling revealed enrichment of immune cell and phagocytic pathways (microglia, osteoclasts).
- Immunohistochemistry confirmed MMP12, HLA-DRA, and osteoclast-associated molecules in macrophages and MNGCs.
- LRRC15-expressing cells, potentially myofibroblasts suppressing CD8+ T cells, were identified; these molecules were also upregulated in other granulomatous diseases.
Conclusions:
- Novel molecular players in GCA pathology were identified.
- These findings provide a foundation for understanding GCA pathogenesis.
- The identified molecules may serve as targets for future therapeutic strategies.
Objectives:
GCA is a granulomatous vasculitis affecting large vessels, leading to intimal occlusion accompanied by the accumulation of myofibroblasts. Histopathologically, GCA is characterized by destruction of the tunica media and hypertrophy of the intima with invasion of activated CD4+ T cells, macrophages and multinucleated giant cells (MNGCs). Despite these well-defined histopathological features, the molecular pathology of GCA has largely remained elusive. We aimed to characterize the pathologic features of GCA at the molecular level.
Methods:
To identify key molecules involved in GCA pathogenesis, we conducted genome-wide gene expression profiling on arterial lesions obtained through temporal artery biopsy of 16 patients who had not received any prior treatment. The resulting data were examined to reveal specific pathways and genes, and some of the molecules were followed up by immunohistochemistry.
Results:
Our analysis revealed a unique gene expression pattern in GCA lesions, including enrichment of immune cells and phagocytic pathways related to microglia and osteoclasts. Subsequent immunohistochemistry analysis identified the presence of MMP12 (macrophage elastase), HLA-DRA, and phagocytosis- and osteoclast-associated molecules in infiltrating macrophages and MNGCs. Additionally, we discovered LRRC15-expressing cells in the tunica intima, suggesting a myofibroblast subpopulation that suppresses cytotoxic CD8+ T cells. These molecules were upregulated in other granulomatous diseases affecting not only arteries but also lymph nodes.
Conclusion:
Our study revealed novel molecules associated with the pathological features of GCA, providing a foundation for better understanding of GCA pathogenesis and development of targeted therapeutic strategies.
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