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SOX4 and RELA Function as Transcriptional Partners to Regulate the Expression of TNF- Responsive Genes in
Kyle Jones1,2, Sergio Ramirez-Perez1,2, Sean Niu1,2
1Department of Orthopaedics, Emory University School of Medicine, Atlanta, GA, United States.
Abstract:
SOX4 belongs to the group C of the SOX transcription factor family. It is a critical mediator of tumor necrosis factor alpha (TNF)-induced transformation of fibroblast-like s-ynoviocytes (FLS) in arthritis. In this study we investigated the genome wide association between the DNA binding and transcriptional activities of SOX4 and the NF-kappaB signaling transcription factor RELA/p65 downstream of TNF signaling. We used ChIP-seq assays in mouse FLS to compare the global DNA binding profiles of SOX4 and RELA. RNA-seq of TNF-induced wildtype and SoxC-knockout FLS was used to identify the SOX4-dependent and independent aspects of the TNF-regulated transcriptome. We found that SOX4 and RELA physically interact with each other on the chromatin. Interestingly, ChIP-seq assays revealed that 70.4% of SOX4 peak summits were within 50bp of the RELA peak summits suggesting that both proteins bind in close-proximity on regulatory sequences, enabling them to co-operatively regulate gene expression. By integrating the ChIP-seq results with RNA-seq from SoxC-knockout FLS we identified a set of TNF-responsive genes that are targets of the RELA-SOX4 transcriptional complex. These TNF-responsive and RELA-SOX4-depenedent genes included inflammation mediators, histone remodeling enzymes and components of the AP-1 signaling pathway. We also identified an autoregulatory mode of SoxC gene expression that involves a TNF-mediated switch from RELA binding to SOX4 binding in the 3' UTR of Sox4 and Sox11 genes. In conclusion, our results show that SOX4 and RELA together orchestrate a multimodal regulation of gene expression downstream of TNF signaling. Their interdependent activities play a pivotal role in the transformation of FLS in arthritis and in the inflammatory pathology of diverse tissues where RELA and SOX4 are co-expressed.
Insights
SOX4 and RELA proteins physically interact on chromatin, co-regulating gene expression in response to TNF signaling. This interaction is key to fibroblast-like synoviocyte transformation in arthritis and broader inflammatory conditions.
Area of Science:
- Molecular Biology
- Immunology
- Genetics
Background:
- SOX4 (SRY-box transcription factor 4) is a SOX family protein involved in tumor necrosis factor alpha (TNF)-induced fibroblast-like synoviocyte (FLS) transformation in arthritis.
- RELA/p65 is a key transcription factor in the NF-kappaB signaling pathway, downstream of TNF signaling.
Purpose of the Study:
- To investigate the genome-wide association between SOX4 DNA binding and transcriptional activity and the NF-kappaB signaling transcription factor RELA/p65.
- To identify SOX4-dependent and independent aspects of the TNF-regulated transcriptome in FLS.
Main Methods:
- Chromatin immunoprecipitation sequencing (ChIP-seq) to compare global DNA binding profiles of SOX4 and RELA in mouse FLS.
- RNA sequencing (RNA-seq) of TNF-induced wildtype and SoxC-knockout FLS to analyze gene expression changes.
- Integration of ChIP-seq and RNA-seq data to identify target genes of the RELA-SOX4 transcriptional complex.
Main Results:
- SOX4 and RELA physically interact and bind in close proximity (within 50bp) on chromatin regulatory sequences.
- A significant portion of TNF-responsive genes are co-regulated by the RELA-SOX4 complex, including inflammation mediators, histone remodelers, and AP-1 pathway components.
- An autoregulatory loop for SoxC gene expression was identified, involving a TNF-mediated switch in binding preference from RELA to SOX4 at the 3' UTR of Sox4 and Sox11.
Conclusions:
- SOX4 and RELA cooperatively orchestrate gene expression downstream of TNF signaling through multimodal regulation.
- The interdependent activities of SOX4 and RELA are critical for FLS transformation in arthritis and inflammatory pathologies in tissues where both are co-expressed.
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