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Transgenic Rodent Assay for Quantifying Male Germ Cell Mutant Frequency
Published on: August 6, 2014
Mismatch repair gene expression and genetic instability in testicular germ cell tumor
Alfredo Velasco1, Erick Riquelme, Marcela Schultz
1Department of Urology, Catholic University of Chile, Santiago, Chile.
Abstract:
Human mismatch repair (MMR) genes encode highly conserved interacting proteins that correct replication errors predisposing to hereditary gastrointestinal and genitourinary malignancies. A subset of sporadic genitourinary tumors also exhibits MMR deficiency and can be identified by measuring the frequency of microsatellite instability (MSI) in cancer cell DNA. We investigated expression of the two most commonly mutated MMR genes, MSH2 and MLH1, in sporadic testicular germ cell tumor (GCT) in order to: (1) determine the expression pattern of MSH2 and MLH1 proteins in normal seminiferous tubules and histologically distinct GCT subtypes, (2) correlate MMR gene expression with genetic instability in GCT and (3) develop a panel of molecular markers that can identify genetically distinct subsets of GCT for prognostic assessment. MSH2 and MLH1 had differential staining patterns in normal seminiferous tubules and malignant tissues. MSH2 was expressed in all stages of spermatogenesis up to but excluding mature sperm whereas MLH1 was predominantly expressed in premeiotic germ cells. All histological GCT subtypes showed differential immunostaining for MSH2 and MLH1 however pure seminoma had statistically significant fewer low MSH2 staining tumors than other subtypes (p = 0.046). Twenty-five percent of GCT exhibited increased frequency of MSI (MSI+ tumors) with 73, 70 and 43% of MSI+ tumors exhibiting low MSH2, low MLH1 or low MSH2 and low MLH1 staining respectively. Fifteen percent of testicular GCT exhibited loss of heterozygosity (LOH) but no MSI (LOH only tumors). Only 28, 17 or 6% of LOH only tumors exhibited low MSH2, low MLH1 or low MSH2 and low MLH1 staining respectively.
Insights
Mismatch repair (MMR) gene expression, specifically MSH2 and MLH1, varies in testicular germ cell tumors (GCTs). This study correlates MMR gene expression with genetic instability to aid in GCT prognosis.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Human mismatch repair (MMR) genes correct DNA replication errors, preventing hereditary cancers.
- MMR deficiency is observed in sporadic genitourinary tumors, detectable via microsatellite instability (MSI).
- Testicular germ cell tumors (GCTs) are a significant genitourinary malignancy.
Purpose of the Study:
- Investigate MSH2 and MLH1 expression in normal testicular tissue and GCT subtypes.
- Correlate MMR gene expression with genetic instability (MSI and LOH) in GCTs.
- Identify molecular markers for prognostically distinct GCT subsets.
Main Methods:
- Immunohistochemical analysis of MSH2 and MLH1 protein expression in normal seminiferous tubules and GCTs.
- Assessment of microsatellite instability (MSI) frequency in GCT DNA.
- Analysis of loss of heterozygosity (LOH) in GCTs.
- Statistical correlation between MMR gene expression, MSI, and LOH.
Main Results:
- MSH2 and MLH1 exhibited distinct expression patterns in spermatogenesis and GCT subtypes.
- Pure seminomas showed significantly less low MSH2 staining compared to other GCT subtypes (p=0.046).
- Twenty-five percent of GCTs were MSI-positive (MSI+), with high rates of low MSH2/MLH1 staining.
- Fifteen percent of GCTs showed LOH without MSI, with lower rates of low MMR gene staining.
Conclusions:
- Differential MSH2 and MLH1 expression patterns exist in testicular germ cells and GCTs.
- MMR gene expression levels correlate with genetic instability (MSI) in GCTs.
- MMR protein expression may serve as a biomarker for distinct GCT subsets and prognostic assessment.
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