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Synthesis and Characterization of an Aspirin-fumarate Prodrug that Inhibits NFκB Activity and Breast Cancer Stem Cells
Published on: January 18, 2017
FAK inhibition suppresses breast cancer progression via DNA methylation-mediated DAB2 gene reactivation
Abstract:
Epigenetic silencing of tumor suppressor genes is one of the main drivers of tumor progression. Without these tumor suppressors to reduce proliferation, tumor cells proliferate unchecked. Focal adhesion kinase (FAK) is a tyrosine kinase which is often upregulated in various tumors and promotes cell proliferation and migration. Recent studies have demonstrated that pharmacological or genetic FAK inhibition can reduce suppressive DNA methylation in vascular cells. Mechanistically, this is through nuclear FAK-mediated ubiquitination and proteasomal degradation of DNA methyltransferase 3A (DNMT3A). Treatment of breast cancer cell lines with FAK inhibitor (FAK-I) was able to reduce both FAK activity and DNMT3A protein expression. Further, global DNA methylation was reduced in breast cancer cell lines treated with FAK-I. This decrease in DNA methylation was correlated with decreased cell proliferation. We further showed that FAK-I reduced DNMT3A expression in breast cancer cells and that treatment with the proteasome inhibitor MG132 prevented loss of DNTM3A protein stability. To identify how FAK-I and DNMT3A loss could reduce breast cancer cell growth we compared RNA sequencing data from breast cancer cells treated with or without FAK-I or in shRNA DNMT3A knockdown. We have identified a potential tumor suppressor, DAB2, as being regulated by the nuclear FAK-DNMT3A axis. DAB2 is often downregulated in cancers and has been shown to play a vital role in switching TGFβ signaling from proliferative to apoptotic by altering TGFβRI binding partners. Immunoblotting and immunostaining indeed revealed that FAK-I and shDNMT3A could induce DAB2 protein expression. Further, FAK-I treatment showed efficacy in reducing tumor growth in vivo using the murine 4T1 tumor model. Immunostaining of 4T1 tumors showed FAK-I decreased DNMT3A, DNA methylation (5-methylcytosine, 5-mC), and increased DAB2 expression. Taken together, these data suggest that nuclear FAK-mediated regulation of DNMT3A can alter the epigenetic landscape and induce tumor suppressor gene expression.
Insights
Focal adhesion kinase (FAK) inhibition reduces tumor suppressor gene silencing by decreasing DNA methyltransferase 3A (DNMT3A). This epigenetic reprogramming reactivates tumor suppressors like DAB2, inhibiting breast cancer cell proliferation and tumor growth.
Area of Science:
- Molecular Biology
- Epigenetics
- Cancer Research
Background:
- Epigenetic silencing of tumor suppressor genes drives tumor progression by enabling unchecked cell proliferation.
- Focal adhesion kinase (FAK), often upregulated in tumors, promotes cancer cell proliferation and migration.
- FAK inhibition has shown potential in reducing DNA methylation in vascular cells.
Purpose of the Study:
- To investigate the role of FAK in regulating DNA methylation and tumor suppressor gene expression in breast cancer.
- To explore the mechanism of FAK-mediated regulation of DNA methyltransferase 3A (DNMT3A).
- To assess the therapeutic potential of FAK inhibition in breast cancer models.
Main Methods:
- Treatment of breast cancer cell lines with FAK inhibitor (FAK-I) and proteasome inhibitor MG132.
- Analysis of FAK activity, DNMT3A protein expression, global DNA methylation, and cell proliferation.
- RNA sequencing to compare gene expression changes, followed by immunoblotting, immunostaining, and in vivo tumor models (murine 4T1).
Main Results:
- FAK inhibition reduced FAK activity, DNMT3A protein expression, and global DNA methylation in breast cancer cells, correlating with decreased proliferation.
- FAK-I treatment led to increased expression of the tumor suppressor DAB2, regulated by the nuclear FAK-DNMT3A axis.
- FAK-I treatment reduced tumor growth in vivo and decreased DNMT3A and DNA methylation while increasing DAB2 expression in tumors.
Conclusions:
- Nuclear FAK regulates DNMT3A stability and proteasomal degradation, influencing the epigenetic landscape in breast cancer.
- FAK inhibition can reverse epigenetic silencing, restore tumor suppressor gene expression (e.g., DAB2), and inhibit cancer cell growth.
- Targeting FAK represents a promising therapeutic strategy for breast cancer by modulating epigenetic mechanisms.
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