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Real-time Imaging of Myeloid Cells Dynamics in ApcMin/+ Intestinal Tumors by Spinning Disk Confocal Microscopy
Published on: October 6, 2014
Dietary-induced ERbeta upregulation counteracts intestinal neoplasia development in intact male ApcMin/+ mice
Michele Barone1, Sabina Tanzi, Katia Lofano
1Department of Emergency and Organ Transplantation, University of Bari, Ospedale Policlinico, Bari, Italy.
Abstract:
Most sporadic colorectal cancers (CRCs) develop through the adenoma-carcinoma sequence pathway and are initiated by adenomatous polyposis coli (APC) gene mutations. Estrogen receptor beta (ERbeta) is recognized to progressively reduce its expression in adenomatous and carcinomatous tissues in humans. Moreover, ERbeta deficiency enhances small intestinal tumorigenesis in rodents. In the Apc(Min/+) mouse model, we evaluated intestinal polyp development and ERbeta expression plus other biological parameters influencing tumor growth (epithelial cell proliferation, apoptosis and migration) following the addition of a combination of the ERbeta-selective agonist silymarin (SIL) and/or lignin (LIG) to a high-fat/low-fiber diet. Forty-five Apc(Min/+) mice were divided in four groups: animals fed on the tumorigenic high-fat/low-fiber diet, the tumorigenic diet supplemented with SIL (0.02%) or purified LIG (6.24%) or SIL (0.005%) + LIG (6.24%). In these animals, we assessed polyp number and volume and their degree of dysplasia together with ERbeta messenger RNA (mRNA) and protein levels and epithelial cell proliferation, migration and apoptosis. The latter group of parameters was evaluated in normal and adenomatous mucosa and the results compared with those found in wild-type (WT) mice fed on the control diet. The addition of SIL or LIG to the diet and even more the specific combination of the two significantly counteracted intestinal tumorigenesis and increased ERbeta mRNA and protein levels. Cell proliferation and apoptosis were rebalanced and cell migration accelerated, restoring values similar to those observed in WT animals. Our results further support a protective effect of ERbeta in CRC suggesting the use of the combination of SIL-LIG as a potential approach against CRC development.
Insights
This study shows that silymarin (SIL) and lignin (LIG) can counteract intestinal tumorigenesis in a mouse model by increasing estrogen receptor beta (ERbeta) expression and rebalancing cell growth. The combination of SIL and LIG shows a protective effect against colorectal cancer (CRC) development.
Area of Science:
- Oncology
- Molecular Biology
- Gastroenterology
Background:
- Sporadic colorectal cancers (CRCs) often arise from adenomas, initiated by APC gene mutations.
- Estrogen receptor beta (ERbeta) expression decreases in human CRC tissues.
- ERbeta deficiency is linked to enhanced intestinal tumorigenesis in rodents.
Purpose of the Study:
- To investigate the effects of silymarin (SIL) and/or lignin (LIG) on intestinal polyp development in Apc(Min/+) mice.
- To evaluate ERbeta expression and tumor growth-influencing parameters (cell proliferation, apoptosis, migration) under dietary interventions.
- To assess the potential of SIL-LIG combination as a CRC preventive strategy.
Main Methods:
- Apc(Min/+) mice were fed a high-fat/low-fiber diet supplemented with SIL, LIG, or SIL+LIG.
- Intestinal polyp number, volume, and dysplasia were assessed.
- ERbeta mRNA and protein levels, epithelial cell proliferation, apoptosis, and migration were measured.
Main Results:
- SIL and LIG, particularly in combination, significantly reduced intestinal tumorigenesis.
- ERbeta mRNA and protein levels were increased by SIL and LIG treatment.
- Cell proliferation and apoptosis were rebalanced, and cell migration was accelerated, nearing wild-type levels.
Conclusions:
- The study supports a protective role for ERbeta in colorectal cancer development.
- The combination of SIL and LIG demonstrates potential as a therapeutic approach against CRC.
- Dietary intervention with SIL-LIG may help prevent CRC by modulating key biological pathways.

