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Updated: Feb 7, 2026

Synovial Fluid Analysis to Identify Osteoarthritis
Published on: October 20, 2022
Methods for high-dimensional analysis of cells dissociated from cryopreserved synovial tissue
Laura T Donlin1,2, Deepak A Rao3, Kevin Wei3
1Hospital for Special Surgery, New York, NY, 10021, USA.
Background:
Detailed 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 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.
Methods:
Multiple 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.
Results:
Upon 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 μg/ml of Liberase™ TL enzyme preparation. 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 diverse fibroblast phenotypes, distinct populations of memory B cells and antibody-secreting cells, and multiple CD4+ and CD8+ T-cell activation states. Bulk RNA-seq 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.
Conclusions:
We 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.
Insights
Researchers developed a standardized protocol for analyzing rheumatoid arthritis (RA) synovial cells from cryopreserved tissue. This method enables robust, high-dimensional analysis for identifying new therapeutic targets and biomarkers in RA pathology.
Area of Science:
- Immunology
- Molecular Biology
- Rheumatology
Background:
- Rheumatoid arthritis (RA) synovial tissue analysis is crucial for understanding joint pathology.
- Identifying specific cellular phenotypes driving RA is key to developing targeted therapies.
- Standardized protocols are needed for reliable comparison of single-cell data across patient samples.
Purpose of the Study:
- To establish robust, standardized protocols for high-dimensional analysis of cells from cryopreserved rheumatoid arthritis synovial tissue.
- To enable effective comparison of cellular phenotypes across diverse patient samples.
- To facilitate the identification of novel therapeutic targets and biomarkers for RA.
Main Methods:
- Cryopreserved synovial tissue fragments were collected from multiple clinical sites.
- Optimized mechanical and enzymatic dissociation methods for cell viability and molecular preservation.
- Mass cytometry and RNA sequencing (RNA-seq), including single-cell RNA-seq, were employed for comprehensive cellular analysis.
Main Results:
- A consensus digestion protocol using Liberase™ TL enzyme was established for synovial tissue dissociation.
- High frequency of viable cells with preserved surface markers and transcriptomes was achieved.
- Mass cytometry and RNA-seq identified diverse fibroblast phenotypes, immune cell subsets, and T-cell activation states.
Conclusions:
- A robust protocol was established for acquiring viable cells from cryopreserved synovial tissue with intact molecular and phenotypic profiles.
- A centralized pipeline for multi-assay analysis of synovial tissue samples from a collaborative network was developed.
- Integrated analysis of large patient cohort data can define RA molecular heterogeneity and identify therapeutic targets.
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