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Robinson, W. H.

Publications and source records attributed to Robinson, W. H..

2 recordsLinked to original sources

TGFβ stimulates fibroblast-like synovial cells to produce ED-A fibronectin in osteoarthritis

IntroductionThe pathophysiology of osteoarthritis (OA) involves wear and tear, and a state of low-grade inflammation. Wear and tear leads to tissue degradation and tissue repair responses, including tissue growth factor beta (TGF{beta})-induced myofibroblast production of extracellular matrix (ECM). Fibronectins are an essential part of the ECM, and injection of fibronectin fragments into rabbit joints is a previously established animal model of OA. Alternatively-spliced fibronectin contains the ED-A domain (ED-A FN) and has been shown to activate Toll-like receptor 4. In this study, we tested the hypothesis that FN fragments containing the ED-A domain could be one mechanism transducing mechanical events into inflammatory signals in OA.\n\nMethodsSamples of synovial membrane and cartilage were obtained from patients with knee OA undergoing joint replacement surgery. Immunostaining for ED-A FN and the myofibroblast marker alpha smooth muscle actin (SMA) was performed on synovial membranes and fibroblast-like synovial cells (FLS). FLS were stimulated with TGF{beta}, TNF, lipopolysaccharide, IL-6, OA synovial fluid, or chondrocyte lysate, and analyzed for ED-A FN. Synovial cells isolated by enzymatic digestion and human monocyte-derived macrophages (MDM) were incubated with recombinant ED-A FN, plasmin, cellular FN, or cellular FN digested with plasmin; and culture supernatants were analyzed for MCP-1 and TNF.\n\nResultsWe hypothesized that ED-A FN is produced by OA FLS in response to factors found in the OA synovial joint. Indeed, the production of ED-A FN by OA FLS was increased by TGF{beta}, OA synovial fluid, and lysed chondrocytes in all experiments (n=3). ED-A FN co- localized with the myofibroblast marker SMA in both the OA FLS (n=3) and in the OA synovial membranes (n=8). We further hypothesized that ED-A FN expression is associated with cellular density and expression of inflammatory molecules in OA. ED-A FN staining was associated with both number of lining layer cells (rho=0.85 and p=0.011) and sublining cells (rho=0.88 and p=0.007) in the OA synovium (n=8), and co-localized with both MCP-1 and TNF (n=5). Recombinant ED-A FN increased the production of both MCP-1 and TNF by MDM (n=3) and OA FLS (n=3). Finally, we demonstrated that the FN fragments containing the ED-A domain generated the same production of both MCP-1 and TNF as recombinant ED-A FN.\n\nConclusionThe disease process in OA shares features with the chronic wound healing response including myofibroblast differentiation and production of mediators that promote myofibroblast production of ED-A FN. We show that recombinant and plasmin-derived ED-A fragments stimulate FLS and MDM to produce pro-inflammatory mediators. Our findings support utilizing ED-A FN for drug delivery or therapeutic targeting of the formation of ED- A FN or the enzymatic fragmentation of FN to reduce pro-inflammatory responses in OA.

immunology

High dimensional analyses of cells dissociated from cryopreserved synovial tissue

BackgroundDetailed molecular analyses of cells from rheumatoid arthritis (RA) synovium hold promise in identifying cellular phenotypes that drive tissue pathology and joint damage. The Accelerating Medicines Partnership (AMP) RA/SLE network aims to deconstruct autoimmune pathology by examining cells within target tissues through multiple high-dimensional assays. Robust standardized protocols need to be developed before cellular phenotypes at a single cell level can be effectively compared across patient samples.\n\nMethodsMultiple clinical sites collected cryopreserved synovial tissue fragments from arthroplasty and synovial biopsy in a 10%-DMSO solution. Mechanical and enzymatic dissociation parameters were optimized for viable cell extraction and surface protein preservation for cell sorting and mass cytometry, as well as for reproducibility in RNA sequencing (RNA-seq). Cryopreserved synovial samples were collectively analyzed at a central processing site by a custom-designed and validated 35-marker mass cytometry panel. In parallel, each sample was flow sorted into fibroblast, T cell, B cell, and macrophage suspensions for bulk population RNA-seq and plate-based single cell CEL-Seq2 RNA-seq.\n\nResultsUpon dissociation, cryopreserved synovial tissue fragments yielded a high frequency of viable cells, comparable to samples undergoing immediate processing. Optimization of synovial tissue dissociation across six clinical collection sites with [~]30 arthroplasty and [~]20 biopsy samples yielded a consensus digestion protocol using 100{micro}g/mL of Liberase TL enzyme. This protocol yielded immune and stromal cell lineages with preserved surface markers and minimized variability across replicate RNA-seq transcriptomes. Mass cytometry analysis of cells from cryopreserved synovium distinguished: 1) diverse fibroblast phenotypes, 2) distinct populations of memory B cells and antibody-secreting cells, and 3) multiple CD4+ and CD8+ T cell activation states. Bulk RNA sequencing of sorted cell populations demonstrated robust separation of synovial lymphocytes, fibroblasts, and macrophages. Single cell RNA-seq produced transcriptomes of over 1000 genes/cell, including transcripts encoding characteristic lineage markers identified.\n\nConclusionWe have established a robust protocol to acquire viable cells from cryopreserved synovial tissue with intact transcriptomes and cell surface phenotypes. A centralized pipeline to generate multiple high-dimensional analyses of synovial tissue samples collected across a collaborative network was developed. Integrated analysis of such datasets from large patient cohorts may help define molecular heterogeneity within RA pathology and identify new therapeutic targets and biomarkers.

immunology