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Comparative Lesions Analysis Through a Targeted Sequencing Approach
Published on: November 5, 2019
Somatic sequence alterations in twenty-one genes selected by expression profile analysis of breast carcinomas
Stephen J Chanock1, Laurie Burdett, Meredith Yeager
1Section of Genomic Variation, Pediatric Oncology Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland 20892-4605, USA. chanocks@mail.nih.gov
Introduction:
Genomic alterations have been observed in breast carcinomas that affect the capacity of cells to regulate proliferation, signaling, and metastasis. Re-sequence studies have investigated candidate genes based on prior genetic observations (changes in copy number or regions of genetic instability) or other laboratory observations and have defined critical somatic mutations in genes such as TP53 and PIK3CA.
Methods:
We have extended the paradigm and analyzed 21 genes primarily identified by expression profiling studies, which are useful for breast cancer subtyping and prognosis. This study conducted a bidirectional re-sequence analysis of all exons and 5', 3', and evolutionarily conserved regions (spanning more than 16 megabases) in 91 breast tumor samples.
Results:
Eighty-seven unique somatic alterations were identified in 16 genes. Seventy-eight were single base pair alterations, of which 23 were missense mutations; 55 were distributed across conserved intronic regions or the 5' and 3' regions. There were nine insertion/deletions. Because there is no a priori way to predict whether any one of the identified synonymous and noncoding somatic alterations disrupt function, analysis unique to each gene will be required to establish whether it is a tumor suppressor gene or whether there is no effect. In five genes, no somatic alterations were observed.
Conclusion:
The study confirms the value of re-sequence analysis in cancer gene discovery and underscores the importance of characterizing somatic alterations across genes that are related not only by function, or functional pathways, but also based upon expression patterns.
Insights
This study analyzed 21 breast cancer genes, identifying 87 unique somatic alterations in 16 genes. Re-sequence analysis is crucial for discovering cancer genes and understanding somatic alterations in breast carcinoma.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Oncology
Background:
- Genomic alterations in breast carcinoma impact cell proliferation, signaling, and metastasis.
- Previous studies identified critical somatic mutations (e.g., TP53, PIK3CA) through re-sequencing candidate genes.
- Expression profiling studies identified genes relevant to breast cancer subtyping and prognosis.
Purpose of the Study:
- To extend genomic analysis by re-sequencing 21 genes identified through expression profiling.
- To investigate somatic alterations in breast tumor samples for cancer gene discovery.
Main Methods:
- Bidirectional re-sequence analysis of all exons and regulatory/conserved regions of 21 genes.
- Analysis performed on 91 breast tumor samples.
- Investigated over 16 megabases of genomic sequence.
Main Results:
- Identified 87 unique somatic alterations across 16 genes.
- Seventy-eight alterations were single base pair changes (23 missense mutations, 55 non-coding).
- Nine insertion/deletion alterations were found; five genes showed no alterations.
Conclusions:
- Re-sequence analysis is valuable for cancer gene discovery.
- Characterizing somatic alterations across functionally related genes, based on expression patterns, is important.
- Further gene-specific analysis is needed to determine the functional impact of identified alterations.
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