Systematic identification of cancer-type-specific drugs based on essential genes and validations in lung adenocarcinoma.

IF 6.8 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Xiang Lian, Xia Kuang, Dong-Dong Zhang, Qian Xu, Anqiang Ye, Cheng-Yu Wang, Hong-Tu Cui, Hai-Xia Guo, Ji-Yun Zhang, Yuan Liu, Ge-Fei Hao, Zhenshun Cheng, Feng-Biao Guo
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引用次数: 0

Abstract

Depicting a global landscape of essential gene-targeting drugs would provide more opportunities for cancer therapy. However, a systematic investigation on drugs targeting essential genes still has not been reported. We suppose that drugs targeting cancer-type-specific essential genes would generally have less toxicity than those targeting pan-cancer essential genes. A scoring function-based strategy was developed to identify cancer-type-specific targets and drugs. The EssentialitySpecificityScore ranked the essential genes in 19 cancer types, and 1151 top genes were identified as cancer-type-specific targets. Combining target-drug interaction databases with research/marketing status, 370 cancer-type-specific drugs were identified, bound to 100 out of all identified targets. Profiles of applied cancer types of identified targets and drugs illustrate the scoring strategy's effectiveness: most drugs apply to cancer types <10. Seven drugs with no previous anticancer evidence were validated in 11 lung adenocarcinoma cell lines, and lower inhibition rates (from 9.4% to 44.0%) were observed in 10 normal cell lines. This difference is statistically significant (Student's t-test, P ≤ .0001), confirming the rationality of our supposition. Our built EGKG (Essential Gene Knowledge Graph) forms a computational basis to uncover essential gene targets and drugs for specific cancer types. It is available at http://gepa.org.cn/egkg/. Also, our experimental result suggests that combining drugs with orthogonal essentiality may be an alternative way to improve anticancer effects while maintaining biocompatibility. The code and data are available at https://github.com/KKINGA1/EGKG_data_process.

基于必要基因的癌症类型特异性药物的系统鉴定及其在肺腺癌中的验证。
描绘基本基因靶向药物的全球图景将为癌症治疗提供更多机会。然而,针对必需基因的药物的系统研究仍未见报道。我们认为,针对癌症类型特异性必需基因的药物通常比针对泛癌症必需基因的药物毒性更小。开发了一种基于评分功能的策略来识别癌症类型特异性靶点和药物。EssentialitySpecificityScore对19种癌症类型的基本基因进行了排名,其中1151个顶级基因被确定为癌症类型特异性靶点。结合靶点-药物相互作用数据库与研究/市场现状,确定了370种癌症类型特异性药物,与所有已确定的靶点中的100种结合。已确定的靶点和药物的应用癌症类型的概况说明了评分策略的有效性:大多数药物适用于癌症类型
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来源期刊
Briefings in bioinformatics
Briefings in bioinformatics 生物-生化研究方法
CiteScore
13.20
自引率
13.70%
发文量
549
审稿时长
6 months
期刊介绍: Briefings in Bioinformatics is an international journal serving as a platform for researchers and educators in the life sciences. It also appeals to mathematicians, statisticians, and computer scientists applying their expertise to biological challenges. The journal focuses on reviews tailored for users of databases and analytical tools in contemporary genetics, molecular and systems biology. It stands out by offering practical assistance and guidance to non-specialists in computerized methodologies. Covering a wide range from introductory concepts to specific protocols and analyses, the papers address bacterial, plant, fungal, animal, and human data. The journal's detailed subject areas include genetic studies of phenotypes and genotypes, mapping, DNA sequencing, expression profiling, gene expression studies, microarrays, alignment methods, protein profiles and HMMs, lipids, metabolic and signaling pathways, structure determination and function prediction, phylogenetic studies, and education and training.
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