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Deficient Pms2, ERCC1, Ku86, CcOI in Field Defects During Progression to Colon Cancer
Published on: July 28, 2010
Deficient Pms2, ERCC1, Ku86, CcOI in field defects during progression to colon cancer
Huy Nguyen1, Cristy Loustaunau, Alexander Facista
1Department of Cell Biology and Anatomy, College of Medicine, University of Arizona, Tucson, USA.
Abstract:
In carcinogenesis, the "field defect" is recognized clinically because of the high propensity of survivors of certain cancers to develop other malignancies of the same tissue type, often in a nearby location. Such field defects have been indicated in colon cancer. The molecular abnormalities that are responsible for a field defect in the colon should be detectable at high frequency in the histologically normal tissue surrounding a colonic adenocarcinoma or surrounding an adenoma with advanced neoplasia (well on the way to a colon cancer), but at low frequency in the colonic mucosa from patients without colonic neoplasia. Using immunohistochemistry, entire crypts within 10 cm on each side of colonic adenocarcinomas or advanced colonic neoplasias were found to be frequently reduced or absent in expression for two DNA repair proteins, Pms2 and/or ERCC1. Pms2 is a dual role protein, active in DNA mismatch repair as well as needed in apoptosis of cells with excess DNA damage. ERCC1 is active in DNA nucleotide excision repair. The reduced or absent expression of both ERCC1 and Pms2 would create cells with both increased ability to survive (apoptosis resistance) and increased level of mutability. The reduced or absent expression of both ERCC1 and Pms2 is likely an early step in progression to colon cancer. DNA repair gene Ku86 (active in DNA non-homologous end joining) and Cytochrome c Oxidase Subunit I (involved in apoptosis) had each been reported to be decreased in expression in mucosal areas close to colon cancers. However, immunohistochemical evaluation of their levels of expression showed only low to modest frequencies of crypts to be deficient in their expression in a field defect surrounding colon cancer or surrounding advanced colonic neoplasia. We show, here, our method of evaluation of crypts for expression of ERCC1, Pms2, Ku86 and CcOI. We show that frequency of entire crypts deficient for Pms2 and ERCC1 is often as great as 70% to 95% in 20 cm long areas surrounding a colonic neoplasia, while frequency of crypts deficient in Ku86 has a median value of 2% and frequency of crypts deficient in CcOI has a median value of 16% in these areas. The entire colon is 150 cm long (about 5 feet) and has about 10 million crypts in its mucosal layer. The defect in Pms2 and ERCC1 surrounding a colon cancer thus may include 1 million crypts. It is from a defective crypt that colon cancer arises.
Insights
Colon cancer field defects involve reduced expression of DNA repair proteins Pms2 and ERCC1 in surrounding normal tissue. This deficiency may drive cancer development by increasing cell survival and mutation rates.
Area of Science:
- Oncology
- Molecular Biology
- Gastroenterology
Background:
- The "field defect" concept explains the high risk of secondary malignancies in cancer survivors.
- This phenomenon is observed in colon cancer, suggesting molecular abnormalities in the surrounding normal tissue.
- Understanding these abnormalities is crucial for early detection and prevention strategies.
Purpose of the Study:
- To investigate molecular abnormalities in the histologically normal colonic mucosa surrounding adenocarcinomas and advanced adenomas.
- To determine the frequency of reduced expression of DNA repair proteins Pms2 and ERCC1 in this "field defect" area.
- To compare the expression levels of Pms2 and ERCC1 with other DNA repair proteins (Ku86) and apoptosis-related proteins (Cytochrome c Oxidase Subunit I).
Main Methods:
- Utilized immunohistochemistry to evaluate the expression of DNA repair proteins Pms2 and ERCC1 in entire crypts.
- Examined crypts within a 10 cm radius of colonic adenocarcinomas or advanced adenomas.
- Quantified the frequency of crypts with reduced or absent protein expression and compared it with Ku86 and Cytochrome c Oxidase Subunit I.
Main Results:
- A high frequency (70-95%) of entire crypts showed reduced or absent expression of Pms2 and/or ERCC1 in the field defect surrounding colonic neoplasia.
- In contrast, reduced expression of Ku86 was found in only 2% of crypts, and Cytochrome c Oxidase Subunit I in 16% of crypts.
- This suggests a significant deficiency in crucial DNA repair pathways within the field defect.
Conclusions:
- Reduced or absent expression of Pms2 and ERCC1 in colonic crypts is a frequent early event in the "field defect" associated with colon cancer.
- This dual deficiency likely promotes colon carcinogenesis by enhancing apoptosis resistance and increasing mutation rates.
- These findings highlight the potential of Pms2 and ERCC1 expression as biomarkers for colon cancer risk and progression.
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