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.

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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