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Tumor-Derived Cell Lines as Molecular Models of Cancer Pharmacogenomics
Andrew Goodspeed1, Laura M Heiser2, Joe W Gray2
1Department of Pharmacology, University of Colorado Anschutz Medical Campus, Aurora, Colorado.
Abstract:
Compared with normal cells, tumor cells have undergone an array of genetic and epigenetic alterations. Often, these changes underlie cancer development, progression, and drug resistance, so the utility of model systems rests on their ability to recapitulate the genomic aberrations observed in primary tumors. Tumor-derived cell lines have long been used to study the underlying biologic processes in cancer, as well as screening platforms for discovering and evaluating the efficacy of anticancer therapeutics. Multiple -omic measurements across more than a thousand cancer cell lines have been produced following advances in high-throughput technologies and multigroup collaborative projects. These data complement the large, international cancer genomic sequencing efforts to characterize patient tumors, such as The Cancer Genome Atlas (TCGA) and International Cancer Genome Consortium (ICGC). Given the scope and scale of data that have been generated, researchers are now in a position to evaluate the similarities and differences that exist in genomic features between cell lines and patient samples. As pharmacogenomics models, cell lines offer the advantages of being easily grown, relatively inexpensive, and amenable to high-throughput testing of therapeutic agents. Data generated from cell lines can then be used to link cellular drug response to genomic features, where the ultimate goal is to build predictive signatures of patient outcome. This review highlights the recent work that has compared -omic profiles of cell lines with primary tumors, and discusses the advantages and disadvantages of cancer cell lines as pharmacogenomic models of anticancer therapies.
Insights
Cancer cell lines are valuable models for studying tumor development and drug resistance. Comparing their genomic data with patient tumors helps predict treatment outcomes and advance cancer therapies.
Area of Science:
- Oncology
- Genomics
- Pharmacology
Background:
- Tumor cells exhibit genetic and epigenetic alterations driving cancer progression and drug resistance.
- Cancer cell lines are crucial models for studying cancer biology and screening therapeutics.
- Large-scale genomic data from cell lines complement patient tumor characterization efforts (e.g., TCGA, ICGC).
Purpose of the Study:
- To evaluate the similarities and differences in genomic features between cancer cell lines and patient samples.
- To assess the utility of cancer cell lines as pharmacogenomic models for anticancer therapies.
- To highlight recent comparisons of omic profiles between cell lines and primary tumors.
Main Methods:
- Reviewing and comparing multi-omic data from over a thousand cancer cell lines.
- Analyzing genomic aberrations in cell lines against those found in primary tumors.
- Evaluating cancer cell lines as pharmacogenomic models for drug response prediction.
Main Results:
- Cancer cell lines offer advantages as pharmacogenomic models due to ease of culture and amenability to high-throughput testing.
- Data from cell lines can link cellular drug response to genomic features.
- Recent work has compared omic profiles of cell lines with primary tumors, revealing both similarities and differences.
Conclusions:
- Cancer cell lines are essential tools for understanding cancer genomics and developing predictive signatures for patient outcomes.
- The utility of cell lines as pharmacogenomic models depends on their ability to recapitulate genomic aberrations found in primary tumors.
- Further research is needed to fully leverage cell line data for personalized anticancer therapies.
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