Synovial phenotypes in rheumatoid arthritis correlate with response to biologic therapeutics

Abstract

Insights

Rheumatoid arthritis (RA) patients with a myeloid phenotype respond best to anti-TNFα therapy. Identifying serum biomarkers like sICAM1 and CXCL13 can predict treatment response in RA and other autoimmune diseases.

Area of Science:

  • Immunology
  • Rheumatology
  • Genomics

Background:

  • Rheumatoid arthritis (RA) is a heterogeneous autoimmune disease with poorly understood molecular drivers impacting therapeutic response.
  • Understanding RA heterogeneity is crucial for developing targeted treatments.

Purpose of the Study:

  • To investigate the relationship between synovial tissue phenotypes and clinical response to targeted therapies in RA.
  • To identify serum biomarkers predicting treatment outcomes in RA patients.

Main Methods:

  • Analysis of synovial tissue gene expression, histology, and cellularity in RA cohorts.
  • Biomarker analysis in serum samples from the ADACTA trial comparing tocilizumab (anti-IL-6R) and adalimumab (anti-TNFα).

Main Results:

  • Four RA synovium phenotypes identified: lymphoid, myeloid, low inflammatory, and fibroid, each with distinct gene expression profiles.
  • Higher baseline myeloid gene signature expression correlated with better response to anti-TNFα therapy.
  • Serum sICAM1 (myeloid) and CXCL13 (lymphoid) levels differentially predicted response to anti-TNFα versus anti-IL-6R therapies.

Conclusions:

  • RA molecular heterogeneity influences clinical outcomes, with the myeloid phenotype showing superior response to anti-TNFα.
  • Serum biomarkers can potentially predict treatment response in RA and other autoimmune conditions.

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