ArticleFrontiers in immunology2024
Cell-specific gene networks and drivers in rheumatoid arthritis synovial tissues.
Article in Frontiers in immunology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Identification of potential predictive biomarkers during JAK-inhibitor therapies in rheumatoid arthritis.Human genomics · 2025Article
- Inflaming and Immune-Resolving: The Ambivalent Role of Eosinophils in Osteoarthritis.International journal of molecular sciences · 2025Review
- NKT cells-a generalist in disease treatment and a new key to unlock immunotherapy.Immunotherapy · 2025Review
- Identification and validation of CKAP2 as a novel biomarker in the development and progression of rheumatoid arthritis.Frontiers in immunology · 2025Article
- Exploring the role of unconventional T cells in rheumatoid arthritis.Frontiers in immunology · 2025Review
- BACH1 as a key driver in rheumatoid arthritis fibroblast-like synoviocytes identified through gene network analysis.Life science alliance · 2025Article
- Gene Network Analyses Identify Co-regulated Transcription Factors and BACH1 as a Key Driver in Rheumatoid Arthritis Fibroblast-like Synoviocytes.bioRxiv : the preprint server for biology · 2024Article
- Quantum graph embedding of transcription factor-gene networks reveals key modules in periodontal bone inflammation: Comparative analysis of GAE and GAN.Journal of oral biology and craniofacial researchArticle
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Abstract
Rheumatoid arthritis (RA) is a common autoimmune and inflammatory disease characterized by inflammation and hyperplasia of the synovial tissues. RA pathogenesis involves multiple cell types, genes, transcription factors (TFs) and networks. Yet, little is known about the TFs, and key drivers and networks regulating cell function and disease at the synovial tissue level, which is the site of disease. In the present study, we used available RNA-seq databases generated from synovial tissues and developed a novel approach to elucidate cell type-specific regulatory networks on synovial tissue genes in RA. We leverage established computational methodologies to infer sample-specific gene regulatory networks and applied statistical methods to compare network properties across phenotypic groups (RA versus osteoarthritis). We developed computational approaches to rank TFs based on their contribution to the observed phenotypic differences between RA and controls across different cell types. We identified 18 (fibroblast-like synoviocyte), 16 (T cells), 19 (B cells) and 11 (monocyte) key regulators in RA synovial tissues. Interestingly, fibroblast-like synoviocyte (FLS) and B cells were driven by multiple independent co-regulatory TF clusters that included MITF, HLX, BACH1 (FLS) and KLF13, FOSB, FOSL1 (B cells). However, monocytes were collectively governed by a single cluster of TF drivers, responsible for the main phenotypic differences between RA and controls, which included RFX5, IRF9, CREB5. Among several cell subset and pathway changes, we also detected reduced presence of Natural killer T (NKT) cells and eosinophils in RA synovial tissues. Overall, our novel approach identified new and previously unsuspected Key driver genes (KDG), TF and networks and should help better understanding individual cell regulation and co-regulatory networks in RA pathogenesis, as well as potentially generate new targets for treatment.
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