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首页> 外文期刊>OMICS: A journal of integrative biology >Genome-Wide Identification of Genes Required for Yeast Growth Under Imatinib Stress: Vacuolar H~+-ATPase Function Is an Important Target of This Anticancer Drug
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Genome-Wide Identification of Genes Required for Yeast Growth Under Imatinib Stress: Vacuolar H~+-ATPase Function Is an Important Target of This Anticancer Drug

机译:全基因组基因所需的识别酵母生长压力伊马替尼:空泡的H ~ + atp酶的功能是一个重要的目标这个抗癌药物

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Imatinib is a highly selective tyrosine kinase inhibitor of the oncogenic kinase Bcr-Abl, the result of a chromosomal abnormality that is associated with chronic myeloid leukaemia (CML). Despite the success of this target- directed therapy, imatinib resistance is an emerging problem, especially in advanced stages of CML. In this study, we explored the yeast Saccharomyces cerevisiae as a model eukaryotic system to better understand the mode of action of imatinib, as well as potential mechanisms of resistance to this drug. Using a systematic approach, we screened a yeast haploid deletion collection with individual knockouts of most nonessential yeast genes, and identified 51 genes that are required for yeast resistance to imatinib. The genes identified are involved mainly in DNA repair and transcription control, cell cycle control and differentiation, vacuolar pH homeostasis, vesicular transport, and protein trafficking. Remarkably, approximately 80% of the genes identified in our screen have human orthologs. The vacuolar pH homeostasis function is associated to our dataset by 13 genes that encode subunits and assembly factors of the yeast vacuolar proton-translocating ATPase (V-ATPase). Further studies using fluorescence microscopy showed that physiological acidification of the vacuole is severely compromised following imatinib treatment of yeast cells, an effect that was found to be dose dependent. Results suggest that imatinib might act as an effective inhibitor of V-ATPase function in yeast, identifying V-ATPase activity and vacuolar function as novel imatinib targets.
机译:伊马替尼是一种高度选择性酪氨酸激酶致癌激酶bcr - abl的抑制剂这是由于染色体异常与慢性粒细胞白血病(CML)。尽管这个目标——导演的成功治疗,伊马替尼耐药是一个新兴问题,特别是在CML的高级阶段。这项研究中,我们探讨了酵母酿酒真核酵母作为一个模型系统更好了解伊马替尼的作用方式,以及抵抗的潜在机制这种药物。筛选酵母单倍体删除集合个人淘汰赛最不必要的酵母基因,并确定了51个基因是必需的酵母耐伊马替尼。主要涉及在DNA修复和识别转录控制、细胞周期控制分化、空泡的pH稳态,膜泡运输、贩卖和蛋白质。值得注意的是,大约80%的基因确定在我们的屏幕上有人类直接同源。空泡的pH稳态函数相关数据集的13个基因编码子单元和装配因素的酵母空泡的proton-translocating腺苷三磷酸酶(V-ATPase)。使用荧光显微镜进一步的研究表明,生理的酸化液泡是这样严重受损伊马替尼治疗的酵母细胞,产生影响被发现是剂量依赖。伊马替尼可能作为一种有效的抑制剂酵母V-ATPase函数的确定V-ATPase活动和空泡的函数作为小说伊马替尼的目标。

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