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Published on: April 27, 2018
Germline and somatic DNA repair gene alterations in prostate cancer
Marc A Dall'Era1,2, John D McPherson2, Allen C Gao1,2
1Department of Urology, University of California at Davis, Sacramento, California.
Background:
Emerging evidence has suggested that DNA repair gene alterations may be important in prostate cancer pathogenesis. In the current study, the authors sought to characterize alterations in DNA repair pathway genes in both primary and metastatic prostate tumors with attention to tissue distribution as well as specific genomic alterations.
Methods:
The authors studied the distribution and type of alterations in 24 genes that are considered important for DNA repair in 944 prostate cancers harvested from localized and metastatic tumors. Tumor DNA underwent hybrid capture for all coding exons of 287 or 395 cancer-related genes plus select introns from 19 or 31 genes frequently rearranged in cancer. Captured libraries were sequenced to a median exon coverage depth of >×500. Specific genomic alterations were characterized and the frequencies of mutations by tissue site (prostate vs metastases) were compared using logistic regression.
Results:
A total of 152 patients from the cohort of 944 men (16%) harbored a germline or somatic mutation in ≥1 DNA repair genes. The most frequently mutated genes were BRCA2 (11.4%) and ATM (5.8%), followed by MSH6 (2.5%) and MSH2 (2.1%). Mutations were identified in approximately 20.1% of primary prostate tumors compared with 18.8% of bone metastases. When stratified by tissue site, the highest rates of DNA repair mutations were found in solid organ metastases, including brain and visceral metastases, compared with prostate.
Conclusions:
DNA repair gene mutations are more common in metastatic than localized prostate tumors. Visceral and other solid organ metastases appear enriched for these mutations compared with localized tumors or bone and lymph node metastases.
Insights
DNA repair gene mutations are more prevalent in metastatic prostate cancer than localized disease. Solid organ metastases, such as brain and visceral sites, show higher rates of these mutations compared to primary tumors.
Area of Science:
- Genomic alterations in DNA repair genes
- Prostate cancer pathogenesis
- Tumorigenesis and metastasis
Background:
- Emerging evidence suggests DNA repair gene alterations play a role in prostate cancer development.
- Understanding these alterations is crucial for comprehending prostate cancer progression.
Purpose of the Study:
- To characterize alterations in DNA repair pathway genes in primary and metastatic prostate tumors.
- To investigate the tissue distribution and specific genomic alterations within these genes.
Main Methods:
- Analysis of 24 key DNA repair genes across 944 prostate cancer samples (localized and metastatic).
- Hybrid capture sequencing of cancer-related genes and frequently rearranged genes.
- Comparison of mutation frequencies between prostate and metastatic sites using logistic regression.
Main Results:
- 16% of patients (152/944) had mutations in DNA repair genes; BRCA2 and ATM were most frequent.
- Mutation rates were similar in primary (20.1%) and bone metastases (18.8%).
- Solid organ metastases (brain, visceral) exhibited higher DNA repair mutation rates than localized tumors.
Conclusions:
- DNA repair gene mutations are more common in metastatic prostate tumors than localized ones.
- Visceral and solid organ metastases are enriched for DNA repair gene mutations.
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