A single cell atlas of frozen shoulder capsule identifies features associated with inflammatory fibrosis resolution

梅尔特克 纤维化 间质细胞 炎症 成纤维细胞 医学 病理 细胞生物学 癌症研究 细胞培养 生物 信号转导 免疫学 遗传学 受体酪氨酸激酶
作者
Michael Ng,Rowie Borst,Hamez Gacaferi,Sarah Davidson,Jessica E. Ackerman,Peter Johnson,Caio Cavalcante Machado,Ian Reekie,Moustafa Attar,Dylan Windell,Mariola Kurowska‐Stolarska,Lucy MacDonald,Stefano Alivernini,Micon Garvilles,Kathrin Jansen,Ananya Bhalla,A.H.S. Lee,James Charlesworth,Rajat Chowdhury,Paul Klenerman
出处
期刊:Nature Communications [Springer Nature]
卷期号:15 (1) 被引量:14
标识
DOI:10.1038/s41467-024-45341-9
摘要

Abstract Frozen shoulder is a spontaneously self-resolving chronic inflammatory fibrotic human disease, which distinguishes the condition from most fibrotic diseases that are progressive and irreversible. Using single-cell analysis, we identify pro-inflammatory MERTK low CD48 + macrophages and MERTK + LYVE1 + MRC1+ macrophages enriched for negative regulators of inflammation which co-exist in frozen shoulder capsule tissues. Micro-cultures of patient-derived cells identify integrin-mediated cell-matrix interactions between MERTK+ macrophages and pro-resolving DKK3+ and POSTN+ fibroblasts, suggesting that matrix remodelling plays a role in frozen shoulder resolution. Cross-tissue analysis reveals a shared gene expression cassette between shoulder capsule MERTK+ macrophages and a respective population enriched in synovial tissues of rheumatoid arthritis patients in disease remission, supporting the concept that MERTK+ macrophages mediate resolution of inflammation and fibrosis. Single-cell transcriptomic profiling and spatial analysis of human foetal shoulder tissues identify MERTK + LYVE1 + MRC1+ macrophages and DKK3+ and POSTN+ fibroblast populations analogous to those in frozen shoulder, suggesting that the template to resolve fibrosis is established during shoulder development. Crosstalk between MerTK+ macrophages and pro-resolving DKK3+ and POSTN+ fibroblasts could facilitate resolution of frozen shoulder, providing a basis for potential therapeutic resolution of persistent fibrotic diseases.
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