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寻找离群值。基于其抗增殖 NCI-60 细胞系特征挖掘蛋白激酶抑制剂。

In Search of Outliers. Mining for Protein Kinase Inhibitors Based on Their Anti-Proliferative NCI-60 Cell Lines Profile.

机构信息

Faculty of Pharmacy, "Carol Davila" University of Medicine and Pharmacy, Traian Vuia 6, 020956 Bucharest, Romania.

出版信息

Molecules. 2020 Apr 11;25(8):1766. doi: 10.3390/molecules25081766.

Abstract

Protein kinases play a pivotal role in signal transduction, protein synthesis, cell growth and proliferation. Their deregulation represents the basis of pathogenesis for numerous diseases such as cancer and pathologies with cardiovascular, nervous and inflammatory components. Protein kinases are an important target in the pharmaceutical industry, with 48 protein kinase inhibitors (PKI) already approved on the market as treatments for different afflictions including several types of cancer. The present work focuses on facilitating the identification of new PKIs with antitumoral potential through the use of data-mining and basic statistics. The National Cancer Institute (NCI) granted access to the results of numerous previously tested compounds on 60 tumoral cell lines (NCI-60 panel). Our approach involved analyzing the NCI database to identify compounds that presented similar growth inhibition (GI) profiles to that of existing PKIs, but different from approved oncologic drugs with other mechanisms of action, using descriptive statistics and statistical outliers. Starting from 34,000 compounds present in the database, we filtered 400 which displayed selective inhibition on certain cancer cell lines similar to that of several already-approved PKIs.

摘要

蛋白激酶在信号转导、蛋白质合成、细胞生长和增殖中起着关键作用。它们的失调是许多疾病(如癌症和具有心血管、神经和炎症成分的疾病)发病机制的基础。蛋白激酶是制药行业的一个重要靶点,已有 48 种蛋白激酶抑制剂(PKI)被批准上市,用于治疗包括多种癌症在内的多种疾病。本工作通过数据挖掘和基础统计学,重点研究通过使用数据挖掘和基础统计学来识别具有抗肿瘤潜力的新型 PKI。美国国立癌症研究所(NCI)允许我们使用 60 种肿瘤细胞系(NCI-60 小组)对之前测试的大量化合物的结果进行分析。我们的方法包括分析 NCI 数据库,以确定与现有 PKI 具有相似生长抑制(GI)特征但与其他作用机制的已批准肿瘤药物不同的化合物,使用描述性统计和统计异常值。从数据库中存在的 34000 种化合物中,我们筛选出了 400 种对某些癌细胞系具有选择性抑制作用的化合物,其抑制作用与几种已批准的 PKI 相似。

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