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Published on: July 28, 2010
Mismatch repair-deficient crypt foci in Lynch syndrome--molecular alterations and association with clinical
Laura Staffa1, Fabian Echterdiek1, Nina Nelius1
1Department of Applied Tumour Biology, Institute of Pathology, University Hospital Heidelberg, Im Neuenheimer Feld 224, 69120 Heidelberg, Germany, and Clinical Cooperation Unit Applied Tumour Biology, DKFZ (German Cancer Research Center) Heidelberg, Im Neuenheimer Feld 280, Heidelberg, Germany.
Abstract:
Lynch syndrome is caused by germline mutations of DNA mismatch repair (MMR) genes, most frequently MLH1 and MSH2. Recently, MMR-deficient crypt foci (MMR-DCF) have been identified as a novel lesion which occurs at high frequency in the intestinal mucosa from Lynch syndrome mutation carriers, but very rarely progress to cancer. To shed light on molecular alterations and clinical associations of MMR-DCF, we systematically searched the intestinal mucosa from Lynch syndrome patients for MMR-DCF by immunohistochemistry. The identified lesions were characterised for alterations in microsatellite-bearing genes with proven or suspected role in malignant transformation. We demonstrate that the prevalence of MMR-DCF (mean 0.84 MMR-DCF per 1 cm2 mucosa in the colorectum of Lynch syndrome patients) was significantly associated with patients' age, but not with patients' gender. No MMR-DCF were detectable in the mucosa of patients with sporadic MSI-H colorectal cancer (n = 12). Microsatellite instability of at least one tested marker was detected in 89% of the MMR-DCF examined, indicating an immediate onset of microsatellite instability after MMR gene inactivation. Coding microsatellite mutations were most frequent in the genes HT001 (ASTE1) with 33%, followed by AIM2 (17%) and BAX (10%). Though MMR deficiency alone appears to be insufficient for malignant transformation, it leads to measurable microsatellite instability even in single MMR-deficient crypts. Our data indicate for the first time that the frequency of MMR-DCF increases with patients' age. Similar patterns of coding microsatellite instability in MMR-DCF and MMR-deficient cancers suggest that certain combinations of coding microsatellite mutations, including mutations of the HT001, AIM2 and BAX gene, may contribute to the progression of MMR-deficient lesions into MMR-deficient cancers.
Insights
MMR-deficient crypt foci (MMR-DCF) increase with age in Lynch syndrome patients. These lesions show microsatellite instability, with mutations in HT001, AIM2, and BAX genes potentially driving cancer progression.
Area of Science:
- Genetics
- Oncology
- Molecular Biology
Background:
- Lynch syndrome arises from germline mutations in DNA mismatch repair (MMR) genes, primarily MLH1 and MSH2.
- MMR-deficient crypt foci (MMR-DCF) are newly identified lesions in Lynch syndrome carriers' intestinal mucosa, rarely progressing to cancer.
- Understanding MMR-DCF molecular alterations is crucial for Lynch syndrome progression insights.
Purpose of the Study:
- To investigate the molecular characteristics and clinical associations of MMR-DCF in Lynch syndrome.
- To determine the prevalence and age-dependency of MMR-DCF.
- To identify specific gene mutations within MMR-DCF that may contribute to cancer development.
Main Methods:
- Systematic immunohistochemical search for MMR-DCF in intestinal mucosa of Lynch syndrome patients.
- Characterization of identified lesions for microsatellite-bearing gene alterations.
- Analysis of microsatellite instability (MSI) and coding microsatellite mutations.
Main Results:
- MMR-DCF prevalence (0.84/cm²) significantly correlated with patient age, not gender.
- No MMR-DCF detected in sporadic MSI-H colorectal cancer patients.
- 89% of MMR-DCF exhibited MSI; HT001 (33%), AIM2 (17%), and BAX (10%) showed the highest coding microsatellite mutation rates.
Conclusions:
- MMR-DCF frequency increases with age in Lynch syndrome.
- MMR deficiency alone is insufficient for malignancy but causes measurable MSI.
- Specific mutations in HT001, AIM2, and BAX within MMR-DCF may drive progression to MMR-deficient cancers.
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