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NFkB disrupts tissue polarity in 3D by preventing integration of microenvironmental signals
Sabine Becker-Weimann1, Gaofeng Xiong, Saori Furuta
1Life Sciences Division, Lawrence Berkeley National Laboratory1, Berkeley, CA.
Abstract:
The microenvironment of cells controls their phenotype, and thereby the architecture of the emerging multicellular structure or tissue. We have reported more than a dozen microenvironmental factors whose signaling must be integrated in order to effect an organized, functional tissue morphology. However, the factors that prevent integration of signaling pathways that merge form and function are still largely unknown. We have identified nuclear factor kappa B (NFkB) as a transcriptional regulator that disrupts important microenvironmental cues necessary for tissue organization. We compared the gene expression of organized and disorganized epithelial cells of the HMT-3522 breast cancer progression series: the non-malignant S1 cells that form polarized spheres ('acini'), the malignant T4-2 cells that form large tumor-like clusters, and the 'phenotypically reverted' T4-2 cells that polarize as a result of correction of the microenvironmental signaling. We identified 180 genes that display an increased expression in disorganized compared to polarized structures. Network, GSEA and transcription factor binding site analyses suggested that NFkB is a common activator for the 180 genes. NFkB was found to be activated in disorganized breast cancer cells, and inhibition of microenvironmental signaling via EGFR, beta1 integrin, MMPs, or their downstream signals suppressed its activation. The postulated role of NFkB was experimentally verified: Blocking the NFkB pathway with a specific chemical inhibitor or shRNA induced polarization and inhibited invasion of breast cancer cells in 3D cultures. These results may explain why NFkB holds promise as a target for therapeutic intervention: Its inhibition can reverse the oncogenic signaling involved in breast cancer progression and integrate the essential microenvironmental control of tissue architecture.
Insights
Nuclear factor kappa B (NFkB) disrupts tissue organization by interfering with cell microenvironment signaling. Inhibiting NFkB restores normal cell structure and function, offering a potential therapeutic target for breast cancer progression.
Area of Science:
- Cellular Biology
- Cancer Research
- Tissue Engineering
Background:
- Cellular phenotype and tissue architecture are dictated by the microenvironment.
- Integration of microenvironmental signaling is crucial for organized tissue morphology.
- Factors disrupting this integration, particularly in cancer, remain largely unknown.
Purpose of the Study:
- To identify key regulators disrupting microenvironmental signaling in breast cancer.
- To investigate the role of nuclear factor kappa B (NFkB) in disorganized epithelial cells.
- To evaluate NFkB inhibition as a therapeutic strategy for breast cancer.
Main Methods:
- Comparative gene expression analysis of organized and disorganized breast cancer cells (HMT-3522 series).
- Bioinformatic analyses (Network, GSEA, transcription factor binding site analysis) to identify NFkB as a key regulator.
- Experimental validation using chemical inhibitors and shRNA to block the NFkB pathway in 3D cultures.
Main Results:
- Identified 180 genes upregulated in disorganized cells, with NFkB identified as a common activator.
- NFkB activation was observed in disorganized breast cancer cells and suppressed by microenvironmental signaling inhibition.
- Blocking NFkB signaling induced cell polarization and inhibited invasion in 3D breast cancer cultures.
Conclusions:
- NFkB is a critical transcriptional regulator that disrupts microenvironmental cues essential for tissue organization in breast cancer.
- Inhibition of NFkB can reverse oncogenic signaling, restore tissue architecture, and inhibit cancer cell invasion.
- Targeting NFkB presents a promising therapeutic avenue for breast cancer treatment by re-establishing microenvironmental control of tissue morphology.
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