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Telomere shortening is an early somatic DNA alteration in human prostate tumorigenesis
Alan K Meeker1, Jessica L Hicks, Elizabeth A Platz
1Brady Urological Institute, Johns Hopkins University School of Medicine, Baltimore, Maryland 21231, USA.
Abstract:
Chromosomal instability appears to be key to the pathogenesis of malignant transformation in human cancers, yet the precise molecular mechanisms underlying chromosomal rearrangements remain largely unknown. Telomeres stabilize and protect the ends of chromosomes, but shorten because of cell division and/or oxidative damage. Critically short telomeres, in the setting of abrogated DNA damage checkpoints, have been shown to cause chromosomal instability in vitro and in animal models, leading to an increased cancer incidence as a result of chromosome fusions, subsequent breakage, and rearrangement. We present results from a quantitative, high-resolution, in situ method for telomere length assessment used to test the hypothesis that telomere shortening is an early contributor to human tumorigenesis. High-grade prostatic intraepithelial neoplasia (HGPIN) is a putative preinvasive precursor of prostatic adenocarcinoma, the most common noncutaneous malignancy in Western men. The telomere lengths of epithelial cells within HGPIN lesions were strikingly shorter than those of adjacent normal appearing epithelial cells in 93% (28 of 30) of lesions examined. This shortening is similar to what has been shown in fully invasive prostate adenocarcinomas. Interestingly, telomere shortening was restricted to the luminal epithelial cells of HGPIN and was not present in the underlying basal epithelial cells; this provides strong evidence that basal cells are most likely not the direct targets of neoplastic transformation. These findings reveal that telomere shortening is a defining somatic DNA alteration characterizing HGPIN. The implications of this are that the earliest phase of human prostate carcinogenesis may proceed as a consequence of chromosomal instability mediated by shortened, dysfunctional telomeres.
Insights
Telomere shortening, a key event in chromosomal instability, is an early step in prostate cancer development. This study found significantly shorter telomeres in pre-cancerous lesions, indicating telomere dysfunction drives early tumorigenesis.
Area of Science:
- Oncology
- Genetics
- Cell Biology
Background:
- Chromosomal instability is crucial for cancer development, but its mechanisms are unclear.
- Telomeres protect chromosome ends but shorten with cell division and oxidative stress.
- Critically short telomeres can cause instability, leading to cancer.
Purpose of the Study:
- To investigate if telomere shortening is an early event in human prostate cancer.
- To assess telomere length in high-grade prostatic intraepithelial neoplasia (HGPIN), a precursor to prostate adenocarcinoma.
Main Methods:
- Utilized a quantitative, high-resolution, in situ method for telomere length assessment.
- Examined telomere lengths in epithelial cells of HGPIN lesions and adjacent normal tissue.
Main Results:
- Telomere lengths in HGPIN epithelial cells were significantly shorter than in adjacent normal cells (93% of cases).
- This shortening was similar to that observed in invasive prostate cancer.
- Shortening was confined to luminal cells, suggesting basal cells are not the primary targets of transformation.
Conclusions:
- Telomere shortening is a defining characteristic of HGPIN, an early pre-malignant lesion.
- This indicates that early prostate carcinogenesis is driven by chromosomal instability due to shortened, dysfunctional telomeres.