Mir221/222 drive synovial hyperplasia and arthritis by targeting cell cycle inhibitors and chromatin remodeling

Fani Roumelioti1,2, Christos Tzaferis1,3, Dimitris Konstantopoulos1

  • 1Institute for Bioinnovation, Biomedical Sciences Research Centre (BSRC) "Alexander Fleming", Vari, Greece.

Elife
|September 5, 2024
PubMed

Insights

MicroRNAs (miRNAs) miR221/222 drive rheumatoid arthritis (RA) pathogenesis by promoting synovial fibroblast (SF) expansion and altering gene expression. Targeting these miRNAs may offer new RA therapies.

Area of Science:

  • Immunology
  • Molecular Biology
  • Genetics

Background:

  • MicroRNAs (miRNAs) regulate gene expression and are implicated in diseases like rheumatoid arthritis (RA).
  • miRNA deregulation is observed in RA, but their specific function in synovial fibroblasts (SFs), key cells in arthritis, is not fully understood.
  • Previous research indicates elevated miR221/222 expression in RA SFs.

Purpose of the Study:

  • To investigate the specific role of miR221/222 in the pathogenesis of RA within synovial fibroblasts.
  • To elucidate the molecular mechanisms by which miR221/222 influence SF behavior and contribute to arthritis development.

Main Methods:

  • Murine SFs were treated with TNF, IL-1β, and IFN-γ to assess miR221/222 gene expression.
  • SF-specific overexpression and ablation of miR221/222 were performed in huTNFtg mice.
  • Transcriptional profiling and single-cell ATAC-seq were used to analyze SFs.
  • Target validation for miR221/222 was conducted.

Main Results:

  • TNF and IL-1β, but not IFN-γ, activated miR221/222 expression in murine SFs.
  • SF-specific miR221/222 overexpression exacerbated arthritis and increased SF expansion in huTNFtg mice.
  • Total ablation of miR221/222 reduced SF expansion and attenuated disease.
  • miR221/222 overexpression altered SFs' transcriptional profile, affecting cell cycle and extracellular matrix regulation pathways.
  • Validated targets included cell cycle inhibitors CDKN1B, CDKN1C, and epigenetic regulator SMARCA1.
  • Single-cell ATAC-seq revealed increased miR221/222 activity in pathogenic SF subclusters, regulated by transcription factors like Rela, Relb, Junb, Bach1, and Nfe2l2.

Conclusions:

  • miR221/222 play a significant, SF-specific pathogenic role in arthritis.
  • Therapeutic targeting of miR221/222 in specific SF subpopulations could lead to novel, fibroblast-targeted therapies for RA.

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