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iACP: a sequence-based tool for identifying anticancer peptides

Oncotarget · 2016 · Vol. 7(13) · pp. 16895–16909
Wei ChenHui DingPengmian FengHao LinKuo‐Chen Chou

Abstract

Cancer remains a major killer worldwide. Traditional methods of cancer treatment are expensive and have some deleterious side effects on normal cells. Fortunately, the discovery of anticancer peptides (ACPs) has paved a new way for cancer treatment. With the explosive growth of peptide sequences generated in the post genomic age, it is highly desired to develop computational methods for rapidly and effectively identifying ACPs, so as to speed up their application in treating cancer. Here we report a sequence-based predictor called iACP developed by the approach of optimizing the g-gap dipeptide components. It was demonstrated by rigorous cross-validations that the new predictor remarkably outperformed the existing predictors for the same purpose in both overall accuracy and stability. For the convenience of most experimental scientists, a publicly accessible web-server for iACP has been established at http://lin.uestc.edu.cn/server/iACP, by which users can easily obtain their desired results.

Machine Learning in BioinformaticsRNA and protein synthesis mechanismsvaccines and immunoinformatics approachesMedicineSequence (biology)Computational biologyBioinformaticsCancer researchPharmacologyBiologyGenetics

MeSH terms

AlgorithmsAnimalsAntineoplastic AgentsDrug Screening Assays, AntitumorHumansPeptidesSoftwareComputational BiologySequence Analysis, Protein

Funding

  • Fundamental Research Funds for the Central Universities
Citations
433
FWCI
33.94
field-weighted impact
References
148
Percentile
100%
vs. same field & year
Citations per year
References
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