An Evolutionary Approach for Identifying Driver Mutations in Colorectal Cancer

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Author
Foo, Jasmine
Leder, Kevin
Riester, Markus
Iwasa, Yoh
Lengauer, Christoph
Published Version
https://doi.org/10.1371/journal.pcbi.1004350Metadata
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Foo, Jasmine, Lin L Liu, Kevin Leder, Markus Riester, Yoh Iwasa, Christoph Lengauer, and Franziska Michor. 2015. “An Evolutionary Approach for Identifying Driver Mutations in Colorectal Cancer.” PLoS Computational Biology 11 (9): e1004350. doi:10.1371/journal.pcbi.1004350. http://dx.doi.org/10.1371/journal.pcbi.1004350.Abstract
The traditional view of cancer as a genetic disease that can successfully be treated with drugs targeting mutant onco-proteins has motivated whole-genome sequencing efforts in many human cancer types. However, only a subset of mutations found within the genomic landscape of cancer is likely to provide a fitness advantage to the cell. Distinguishing such “driver” mutations from innocuous “passenger” events is critical for prioritizing the validation of candidate mutations in disease-relevant models. We design a novel statistical index, called the Hitchhiking Index, which reflects the probability that any observed candidate gene is a passenger alteration, given the frequency of alterations in a cross-sectional cancer sample set, and apply it to a mutational data set in colorectal cancer. Our methodology is based upon a population dynamics model of mutation accumulation and selection in colorectal tissue prior to cancer initiation as well as during tumorigenesis. This methodology can be used to aid in the prioritization of candidate mutations for functional validation and contributes to the process of drug discovery.Other Sources
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4575033/pdf/Terms of Use
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