Database Commons
Database Commons

a catalog of worldwide biological databases

Database Profile

dbCPM

General information

URL: http://bioinfo.ahu.edu.cn:8080/dbCPM/
Full name: Database of Cancer Passenger Mutations
Description: a highly curated database of passenger mutations that are unlikely to engage in cancer development, progression, or therapy.
Year founded: 2018
Last update:
Version:
Accessibility:
Accessible
Country/Region: China

Classification & Tag

Data type:
DNA
Data object:
Database category:
Major species:
Keywords:

Contact information

University/Institution: Anhui University
Address: Institute of Physical Science and Information Technology, 111 Jiulong Avenue, Hefei 230601, China
City: Hefei
Province/State: Anhui
Country/Region: China
Contact name (PI/Team): Junfeng Xia
Contact email (PI/Helpdesk): jfxia@ahu.edu.cn

Publications

30379998
dbCPM: a manually curated database for exploring the cancer passenger mutations. [PMID: 30379998]
Yue Z, Zhao L, Xia J.

While recently emergent driver mutation data sets are available for developing computational methods to predict cancer mutation effects, benchmark sets focusing on passenger mutations are largely missing. Here, we developed a comprehensive literature-based database of Cancer Passenger Mutations (dbCPM), which contains 941 experimentally supported and 978 putative passenger mutations derived from a manual curation of the literature. Using the missense mutation data, the largest group in the dbCPM, we explored patterns of missense passenger mutations by comparing them with the missense driver mutations and assessed the performance of four cancer-focused mutation effect predictors. We found that the missense passenger mutations showed significant differences with drivers at multiple levels, and several appeared in both the passenger and driver categories, showing pleiotropic functions depending on the tumor context. Although all the predictors displayed good true positive rates, their true negative rates were relatively low due to the lack of negative training samples with experimental evidence, which suggests that a suitable negative data set for developing a more robust methodology is needed. We hope that the dbCPM will be a benchmark data set for improving and evaluating prediction algorithms and serve as a valuable resource for the cancer research community. dbCPM is freely available online at http://bioinfo.ahu.edu.cn:8080/dbCPM.

Brief Bioinform. 2018:() | 11 Citations (from Europe PMC, 2025-12-20)

Ranking

All databases:
4530/6895 (34.315%)
Genotype phenotype and variation:
653/1005 (35.124%)
Health and medicine:
1149/1738 (33.947%)
Literature:
389/577 (32.756%)
4530
Total Rank
11
Citations
1.571
z-index

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Record metadata

Created on: 2019-01-03
Curated by:
Dong Zou [2019-01-10]
Dong Zou [2019-01-03]