DriverDBv4: a multi-omics integration database for cancer driver gene research

Author:

Liu Chia-Hsin1,Lai Yo-Liang2,Shen Pei-Chun1,Liu Hsiu-Cheng1,Tsai Meng-Hsin1,Wang Yu-De34,Lin Wen-Jen15,Chen Fang-Hsin6,Li Chia-Yang7,Wang Shu-Chi8,Hung Mien-Chie1391011,Cheng Wei-Chung1312ORCID

Affiliation:

1. Cancer Biology and Precision Therapeutics Center, China Medical University , Taichung 404328, Taiwan

2. Department of Radiation Oncology, China Medical University , Taichung 404328, Taiwan

3. Graduate Institute of Biomedical Sciences, China Medical University , Taichung 404328, Taiwan

4. Department of Urology, China Medical University , Taichung 404328, Taiwan

5. School of Medicine, China Medical University , Taichung 404328, Taiwan

6. Institute of Nuclear Engineering and Science, National Tsing Hua University , Hsinchu 300044 , Taiwan

7. Graduate Institute of Medicine, College of Medicine, Kaohsiung Medical University , Kaohsiung 80708, Taiwan

8. Department of Medical Laboratory Science and Biotechnology, Kaohsiung Medical University , Kaohsiung 80708, Taiwan

9. Institute of Biochemistry and Molecular Biology, China Medical University , Taichung 404328 , Taiwan

10. Molecular Medicine Center, China Medical University Hospital, China Medical University , Taichung 404328 , Taiwan

11. Department of Biotechnology, Asia University , Taichung 413305 , Taiwan

12. The Ph.D. program for Cancer Biology and Drug Discovery, China Medical University and Academia Sinica , Taichung 404328, Taiwan

Abstract

Abstract Advancements in high-throughput technology offer researchers an extensive range of multi-omics data that provide deep insights into the complex landscape of cancer biology. However, traditional statistical models and databases are inadequate to interpret these high-dimensional data within a multi-omics framework. To address this limitation, we introduce DriverDBv4, an updated iteration of the DriverDB cancer driver gene database (http://driverdb.bioinfomics.org/). This updated version offers several significant enhancements: (i) an increase in the number of cohorts from 33 to 70, encompassing approximately 24 000 samples; (ii) inclusion of proteomics data, augmenting the existing types of omics data and thus expanding the analytical scope; (iii) implementation of multiple multi-omics algorithms for identification of cancer drivers; (iv) new visualization features designed to succinctly summarize high-context data and redesigned existing sections to accommodate the increased volume of datasets and (v) two new functions in Customized Analysis, specifically designed for multi-omics driver identification and subgroup expression analysis. DriverDBv4 facilitates comprehensive interpretation of multi-omics data across diverse cancer types, thereby enriching the understanding of cancer heterogeneity and aiding in the development of personalized clinical approaches. The database is designed to foster a more nuanced understanding of the multi-faceted nature of cancer.

Funder

National Science and Technology Council

China Medical University

China Medical University Hospital

Publisher

Oxford University Press (OUP)

Subject

Genetics

Reference39 articles.

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4. DriverDBv3: a multi-omics database for cancer driver gene research;Liu;Nucleic Acids Res.,2020

5. The Cancer Genome Atlas Pan-Cancer analysis project;Weinstein;Nat. Genet.,2013

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