利用分子系统生物学方法鉴定对伊马替尼和奎宁的耐药靶点和机制

S. D. dos Santos, M. Palma, S. Tenreiro, N. Mira, A. Moreira, I. Sá-Correia
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引用次数: 0

摘要

酿酒酵母为生物医学和医学研究提供了良好的真核生物学模型。本文将酵母应用于药理学研究,以发现药物的新靶点和作用机制,以及参与耐药的途径。这里介绍的工作主要集中在两种不同的药物:传统的抗疟疾奎宁和典型的抗癌伊马替尼。采用了几种全基因组方法,从转录组学到化学基因组学和定量蛋白质组学。这项工作的主要结果包括确定了所研究的两种药物的潜在新靶点和作用方式。特别是,高度保守的酵母液泡H+- atp酶在体内和体外均被伊马替尼抑制,这表明液泡功能是一个新的伊马替尼靶点,而奎宁在竞争性抑制动力学模型下被发现可以抑制酵母细胞对葡萄糖的摄取。这些发现可能在疟疾寄生虫生物学中有重要的相似之处,其中葡萄糖摄取是至关重要的,并由PfHT1介导,PfHT1是一种与酵母高度同源的单拷贝转运体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of targets and mechanisms of resistance to imatinib and quinine using a molecular systems biology approach
Saccharomyces cerevisiae provides an excellent eukary-otic model for biomedical and medicinal research. In this article, yeast was applied in pharmacological studies to identify new targets and mechanisms of action of drugs, as well as pathways involved in drug resistance. The work here presented is focused on two distinct drugs: the traditional anti-malarial quinine, and the paradigmatic anti-cancer imatinib. Several genome-wide approaches were employed, ranging from transcriptomics to chemogenomics and quantitative proteomics. The main results that stem from this work include the identification of potential new targets and modes of action for the two drugs studied. In particular, the highly conserved yeast vacuolar H+-ATPase was shown to be inhibited by imatinib, both in vivo and in vitro, suggesting that vacuolar function is a novel imatinib target, while quinine was found to inhibit the uptake of glucose into yeast cells following a competitive inhibition kinetic model. These findings might have an important parallel in the malaria parasite biology, where glucose uptake is vital and mediated by PfHT1, a single-copy transporter highly homologous to yeasts.
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