Deoxycholic acid promotes the growth of colonic aberrant crypt foci

Christopher Flynn1, David C Montrose, Daniel L Swank

  • 1The Carole and Ray Neag Comprehensive Cancer Center, The University of Connecticut Health Center, Farmington, Connecticut, USA.

Molecular Carcinogenesis
|November 9, 2006
PubMed

Insights

Dietary deoxycholic acid (DCA) promotes colon cancer development in resistant mice. DCA exposure, especially after azoxymethane (AOM) treatment, significantly increased preneoplastic lesions by activating nuclear beta-catenin signaling.

Area of Science:

  • Oncology
  • Gastroenterology
  • Molecular Biology

Background:

  • AKR/J mice exhibit natural resistance to azoxymethane (AOM)-induced colon tumorigenesis.
  • Aberrant crypt foci (ACF) are early preneoplastic lesions in the colon, rarely progressing to tumors in resistant mice.

Purpose of the Study:

  • To investigate if dietary deoxycholic acid (DCA) can overcome genetic resistance to AOM-induced colon tumorigenesis.
  • To determine the role of nuclear beta-catenin in DCA-enhanced ACF formation.

Main Methods:

  • AKR/J mice were exposed to AOM and subsequently fed a diet containing 0.25% DCA, either before or after AOM treatment.
  • Aberrant crypt foci (ACF) multiplicity was quantified.
  • Immunohistochemistry was used to assess nuclear beta-catenin, E-cadherin, and APC staining within ACF.

Main Results:

  • DCA administration significantly increased ACF multiplicity in AOM-treated AKR/J mice compared to controls.
  • Post-initiation DCA exposure resulted in a further substantial increase in ACF.
  • Increased ACF correlated with higher frequencies of nuclear beta-catenin accumulation, particularly with post-initiation DCA exposure.

Conclusions:

  • Dietary DCA can sensitize the resistant AKR/J colon to AOM-induced preneoplastic lesion formation.
  • Nuclear translocation of beta-catenin is implicated in the mechanism by which DCA promotes colon dysplasia.
  • DCA acts as a tumor promoter, overcoming genetic resistance and highlighting the role of bile acids in colon carcinogenesis.

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