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.

Oncotarget
|November 19, 2013
PubMed

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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