Distinct fibroblast subsets drive inflammation and damage in arthritis.

Croft, Adam P; Campos, Joana; Jansen, Kathrin; Turner, Jason D; Marshall, Jennifer; Attar, Moustafa; Savary, Loriane; Wehmeyer, Corinna et al. · Nature · 2019

basic_science · Level V

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Abstract

The identification of lymphocyte subsets with non-overlapping effector functions has been pivotal to the development of targeted therapies in immune-mediated inflammatory diseases (IMIDs)<sup>1,2</sup>. However, it remains unclear whether fibroblast subclasses with non-overlapping functions also exist and are responsible for the wide variety of tissue-driven processes observed in IMIDs, such as inflammation and damage<sup>3-5</sup>. Here we identify and describe the biology of distinct subsets of fibroblasts responsible for mediating either inflammation or tissue damage in arthritis. We show that deletion of fibroblast activation protein-α (FAPα)<sup>+</sup> fibroblasts suppressed both inflammation and bone erosions in mouse models of resolving and persistent arthritis. Single-cell transcriptional analysis identified two distinct fibroblast subsets within the FAPα<sup>+</sup> population: FAPα<sup>+</sup>THY1<sup>+</sup> immune effector fibroblasts located in the synovial sub-lining, and FAPα<sup>+</sup>THY1<sup>-</sup> destructive fibroblasts restricted to the synovial lining layer. When adoptively transferred into the joint, FAPα<sup>+</sup>THY1<sup>-</sup> fibroblasts selectively mediate bone and cartilage damage with little effect on inflammation, whereas transfer of FAPα<sup>+</sup> THY1<sup>+</sup> fibroblasts resulted in a more severe and persistent inflammatory arthritis, with minimal effect on bone and cartilage. Our findings describing anatomically discrete, functionally distinct fibroblast subsets with non-overlapping functions have important implications for cell-based therapies aimed at modulating inflammation and tissue damage.

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