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Updated: Jul 26, 2025

Deficient Pms2, ERCC1, Ku86, CcOI in Field Defects During Progression to Colon Cancer
Published on: July 28, 2010
A DNA damage response-like phenotype defines a third of colon cancers at onset
Stefania Mauro1, Maddalena M Bolognesi2, Nicoletta Villa3
1Pathology, Vimercate Hospital, ASST-Brianza, Vimercate, Italy.
Abstract:
Colon adenocarcinoma (COAD) has a limited range of diversified, personalized therapeutic opportunities, besides DNA hypermutating cases; thus, both new targets or broadening existing strategies for personalized intervention are of interest. Routinely processed material from 246 untreated COADs with clinical follow-up was probed for evidence of DNA damage response (DDR), that is, the gathering of DDR-associated molecules at discrete nuclear spots, by multiplex immunofluorescence and immunohistochemical staining for DDR complex proteins (γH2AX, pCHK2, and pNBS1). We also tested the cases for type I interferon response, T-lymphocyte infiltration (TILs), and mutation mismatch repair defects (MMRd), known to be associated with defects of DNA repair. FISH analysis for chromosome 20q copy number variations was obtained. A total of 33.7% of COAD display a coordinated DDR on quiescent, non-senescent, non-apoptotic glands, irrespective of TP53 status, chromosome 20q abnormalities, and type I IFN response. Clinicopathological parameters did not differentiate DDR+ cases from the other cases. TILs were equally present in DDR and non-DDR cases. DDR+ MMRd cases were preferentially retaining wild-type MLH1. The outcome after 5FU-based chemotherapy was not different in the two groups. DDR+ COAD represents a subgroup not aligned with known diagnostic, prognostic, or therapeutic categories, with potential new targeted treatment opportunities, exploiting the DNA damage repair pathways.
Insights
A subgroup of colon adenocarcinoma (COAD) exhibits a coordinated DNA damage response (DDR), independent of known markers. This DDR+ COAD subgroup may offer new therapeutic targets by exploiting DNA repair pathways.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Colon adenocarcinoma (COAD) treatment options are limited, especially for non-hypermutated cases.
- Identifying new therapeutic targets and strategies for personalized intervention in COAD is crucial.
Purpose of the Study:
- To investigate the presence and characteristics of DNA damage response (DDR) in a cohort of untreated COAD patients.
- To explore the association of DDR with other biological factors and clinical parameters in COAD.
Main Methods:
- Multiplex immunofluorescence and immunohistochemistry were used to detect DDR complex proteins (γH2AX, pCHK2, pNBS1).
- Analysis included type I interferon response, T-lymphocyte infiltration (TILs), mismatch repair defects (MMRd), and chromosome 20q copy number variations via FISH.
- 246 untreated COAD cases with clinical follow-up were analyzed.
Main Results:
- 33.7% of COAD cases displayed a coordinated DDR in quiescent glands, irrespective of TP53 status, 20q abnormalities, or type I IFN response.
- Clinicopathological parameters, TILs, and response to 5FU-based chemotherapy did not differ between DDR+ and DDR- cases.
- DDR+ cases with mismatch repair defects (MMRd) preferentially retained wild-type MLH1.
Conclusions:
- Colon adenocarcinoma exhibits a distinct DDR+ subgroup not aligned with current diagnostic, prognostic, or therapeutic categories.
- This DDR+ COAD subgroup presents potential for novel targeted treatment opportunities by leveraging DNA damage repair pathways.
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