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Updated: Jun 24, 2025

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Published on: October 20, 2022
Phosphoproteomic profiling of early rheumatoid arthritis synovium reveals active signalling pathways and
Cankut Çubuk1, Rachel Lau1, Pedro Cutillas2
1Centre for Experimental Medicine and Rheumatology, William Harvey Research Institute, Queen Mary University of London and Barts NIHR BRC & NHS Trust, Charterhouse Square, London, EC1M 6BQ, UK.
Background:
Kinases are intracellular signalling mediators and key to sustaining the inflammatory process in rheumatoid arthritis (RA). Oral inhibitors of Janus Kinase family (JAKs) are widely used in RA, while inhibitors of other kinase families e.g. phosphoinositide 3-kinase (PI3K) are under development. Most current biomarker platforms quantify mRNA/protein levels, but give no direct information on whether proteins are active/inactive. Phosphoproteome analysis has the potential to measure specific enzyme activation status at tissue level.
Methods:
We validated the feasibility of phosphoproteome and total proteome analysis on 8 pre-treatment synovial biopsies from treatment-naive RA patients using label-free mass spectrometry, to identify active cell signalling pathways in synovial tissue which might explain failure to respond to RA therapeutics.
Results:
Differential expression analysis and functional enrichment revealed clear separation of phosphoproteome and proteome profiles between lymphoid and myeloid RA pathotypes. Abundance of specific phosphosites was associated with the degree of inflammatory state. The lymphoid pathotype was enriched with lymphoproliferative signalling phosphosites, including Mammalian Target Of Rapamycin (MTOR) signalling, whereas the myeloid pathotype was associated with Mitogen-Activated Protein Kinase (MAPK) and CDK mediated signalling. This analysis also highlighted novel kinases not previously linked to RA, such as Protein Kinase, DNA-Activated, Catalytic Subunit (PRKDC) in the myeloid pathotype. Several phosphosites correlated with clinical features, such as Disease-Activity-Score (DAS)-28, suggesting that phosphosite analysis has potential for identifying novel biomarkers at tissue-level of disease severity and prognosis.
Conclusions:
Specific phosphoproteome/proteome signatures delineate RA pathotypes and may have clinical utility for stratifying patients for personalised medicine in RA.
Insights
Phosphoproteome analysis reveals distinct rheumatoid arthritis (RA) subtypes. This approach identifies active signaling pathways and potential biomarkers for personalized medicine in RA patients.
Area of Science:
- Biochemistry
- Molecular Biology
- Immunology
Background:
- Kinases are crucial for rheumatoid arthritis (RA) inflammation.
- Current biomarkers lack information on protein activity.
- Phosphoproteome analysis can assess enzyme activation in tissues.
Purpose of the Study:
- To explore phosphoproteome and proteome analysis in RA synovial biopsies.
- To identify active cell signaling pathways linked to treatment resistance.
Main Methods:
- Label-free mass spectrometry on pre-treatment synovial biopsies from RA patients.
- Analysis of phosphoproteome and total proteome.
- Differential expression and functional enrichment analysis.
Main Results:
- Distinct phosphoproteome and proteome profiles identified for lymphoid and myeloid RA pathotypes.
- Specific phosphosites correlated with inflammatory state and clinical features (e.g., DAS-28).
- Novel kinases like PRKDC implicated in the myeloid pathotype; MTOR and MAPK signaling pathways highlighted.
Conclusions:
- Phosphoproteome and proteome signatures differentiate RA pathotypes.
- Potential clinical utility for patient stratification and personalized medicine in RA.
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