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Published on: October 6, 2014
Regulation of VDR Expression in Apc-Mutant Mice, Human Colon Cancers and Adenomas
Charles Giardina1, Masako Nakanishi2, Awaad Khan3
1Department of Molecular and Cell Biology, University of Connecticut, Storrs, Connecticut. charles.giardina@uconn.edu.
Abstract:
One variable that may affect the ability of vitamin D to reduce colon cancer risk is the expression of its high-affinity receptor, VDR. Here, we show that vitamin D does not reduce tumor formation in Apc(Δ14/+) mice and that VDR expression is lost in the majority of the colon tumor cells. The extent of VDR loss corresponded inversely to the level of β-catenin nuclear localization and could be observed in early lesions composed of just a few crypts. Analysis of reported VDR regulators showed that the repressing class I histone deacetylases (HDAC) were significantly elevated in the tumors (up to 4-fold), whereas the VDR-activating retinoid X receptors (RXR) were downregulated (∼50%). Expression of the Slug repressor was also increased, but was found primarily in stromal cells. Analysis of epigenetically active compounds on colon cell lines and intestinal organoids showed that HDAC inhibitors were particularly adept at stimulating VDR expression. Treatment of tumor-bearing Apc(Δ14/+) mice with the HDAC inhibitor panobinostat increased VDR expression in the tumors and normal mucosa. The RXR agonist bexarotene failed to activate VDR expression, indicating that RXR ligands were not limiting. Analysis of human microarray data indicated that VDR mRNA is frequently downregulated in colon adenomas, which correlated positively with RXRA expression and inversely with HDAC 2 and 8 expression. Human adenomas showed variable VDR protein expression levels, both between and within individual lesions. Determining the mechanisms of VDR regulation in colon neoplasms may significantly enhance our ability to use vitamin D as a cancer prevention agent.
Insights
Vitamin D may not prevent colon cancer if its receptor (VDR) is lost in tumors. Histone deacetylase inhibitors can restore VDR expression, potentially aiding vitamin D
Area of Science:
- Oncology
- Molecular Biology
- Cancer Prevention
Background:
- Vitamin D's role in colon cancer prevention is linked to its receptor, VDR.
- Loss of VDR expression in colon tumors may hinder vitamin D's protective effects.
Purpose of the Study:
- Investigate the relationship between VDR expression and colon tumor formation.
- Identify mechanisms regulating VDR in colon neoplasms.
- Explore therapeutic strategies to restore VDR expression.
Main Methods:
- Utilized Apc(Δ14/+) mouse model for colon cancer studies.
- Analyzed VDR expression and its correlation with β-catenin.
- Assessed regulators of VDR, including HDACs and RXRs.
- Tested effects of HDAC inhibitors and RXR agonists on VDR expression.
- Examined human colon adenoma microarray data.
Main Results:
- Vitamin D did not reduce tumor formation in Apc(Δ14/+) mice.
- VDR expression was lost in most colon tumor cells, inversely correlating with β-catenin.
- HDACs were elevated, and RXRs downregulated in tumors.
- HDAC inhibitors increased VDR expression in cell lines, organoids, and mouse models.
- Human adenomas frequently showed downregulated VDR mRNA, correlating with RXRA and inversely with HDACs.
Conclusions:
- VDR loss is a common event in colon neoplasms.
- Aberrant regulation of VDR by HDACs and RXRs contributes to VDR downregulation.
- HDAC inhibition shows promise for restoring VDR expression in colon cancer.
- Understanding VDR regulation is crucial for optimizing vitamin D's role in cancer prevention.
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