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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
Malignancy of Cancers and Synthetic Lethal Interactions Associated With Mutations of Cancer Driver Genes
Xiaosheng Wang1, Yue Zhang, Ze-Guang Han
1From the School of Basic Medicine and Clinic Pharmacy (XW), China Pharmaceutical University, Nanjing; The First Clinical College of Harbin Medical University (YZ), Harbin, China; Division of Genetics and Development (YZ), The Toronto Western Research Institute, Toronto Western Hospital, University Health Network, Toronto, Ontario, Canada; and Key Laboratory of Systems Biomedicine (Ministry of Education) (Z-GH, K-YH), Shanghai Center for Systems Biomedicine, Shanghai Jiao Tong University, Shanghai, China.
Abstract:
The mutation status of cancer driver genes may correlate with different degrees of malignancy of cancers. The doubling time and multidrug resistance are 2 phenotypes that reflect the degree of malignancy of cancer cells. Because most of cancer driver genes are hard to target, identification of their synthetic lethal partners might be a viable approach to treatment of the cancers with the relevant mutations.The genome-wide screening for synthetic lethal partners is costly and labor intensive. Thus, a computational approach facilitating identification of candidate genes for a focus synthetic lethal RNAi screening will accelerate novel anticancer drug discovery.We used several publicly available cancer cell lines and tumor tissue genomic data in this study.We compared the doubling time and multidrug resistance between the NCI-60 cell lines with mutations in some cancer driver genes and those without the mutations. We identified some candidate synthetic lethal genes to the cancer driver genes APC, KRAS, BRAF, PIK3CA, and TP53 by comparison of their gene phenotype values in cancer cell lines with the relevant mutations and wild-type background. Further, we experimentally validated some of the synthetic lethal relationships we predicted.We reported that mutations in some cancer driver genes mutations in some cancer driver genes such as APC, KRAS, or PIK3CA might correlate with cancer proliferation or drug resistance. We identified 40, 21, 5, 43, and 18 potential synthetic lethal genes to APC, KRAS, BRAF, PIK3CA, and TP53, respectively. We found that some of the potential synthetic lethal genes show significantly higher expression in the cancers with mutations of their synthetic lethal partners and the wild-type counterparts. Further, our experiments confirmed several synthetic lethal relationships that are novel findings by our methods.We experimentally validated a part of the synthetic lethal relationships we predicted. We plan to perform further experiments to validate the other synthetic lethal relationships predicted by this study.Our computational methods achieve to identify candidate synthetic lethal partners to cancer driver genes for further experimental screening with multiple lines of evidences, and therefore contribute to development of anticancer drugs.
Insights
Identifying synthetic lethal partners for cancer driver genes like APC, KRAS, and TP53 can accelerate drug discovery. This study computationally identified potential partners, validating some experimentally to aid in developing new anticancer therapies.
Area of Science:
- Oncology
- Genomics
- Computational Biology
Background:
- Cancer driver gene mutations influence malignancy, reflected by cell doubling time and drug resistance.
- Targeting cancer driver genes is challenging; synthetic lethality offers a therapeutic strategy.
- Genome-wide screening for synthetic lethal partners is resource-intensive.
Purpose of the Study:
- To develop a computational approach for identifying candidate synthetic lethal genes for cancer driver genes.
- To accelerate the discovery of novel anticancer drugs by prioritizing genes for experimental screening.
Main Methods:
- Utilized publicly available cancer cell line and tumor tissue genomic data.
- Compared phenotypes (doubling time, multidrug resistance) between mutated and wild-type cancer driver genes (APC, KRAS, BRAF, PIK3CA, TP53).
- Computationally identified candidate synthetic lethal partners and experimentally validated predicted relationships.
Main Results:
- Identified potential synthetic lethal genes for APC (40), KRAS (21), BRAF (5), PIK3CA (43), and TP53 (18).
- Found correlations between driver gene mutations (APC, KRAS, PIK3CA) and cancer proliferation/drug resistance.
- Confirmed several novel synthetic lethal relationships through experimental validation.
Conclusions:
- Computational identification of synthetic lethal partners is a viable strategy for anticancer drug discovery.
- The identified candidate genes and validated relationships provide a foundation for further experimental screening.
- This approach aids in developing targeted therapies for cancers with specific driver gene mutations.
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