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首页> 外文期刊>Antimicrobial agents and chemotherapy. >Transcriptomic profiling of the Saccharomyces cerevisiae response to quinine reveals a glucose limitation response attributable to drug-induced inhibition of glucose uptake.
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Transcriptomic profiling of the Saccharomyces cerevisiae response to quinine reveals a glucose limitation response attributable to drug-induced inhibition of glucose uptake.

机译:酿酒酵母对奎宁反应的转录组谱分析显示,葡萄糖限制反应归因于药物诱导的对葡萄糖摄取的抑制。

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Quinine has been employed in the treatment of malaria for centuries and is still used against severe Plasmodium falciparum malaria. However, its interactions with the parasite remain poorly understood and subject to debate. In this study, we used the Saccharomyces cerevisiae eukaryotic model to better understand quinine's mode of action and the mechanisms underlying the cell response to the drug. We obtained a transcriptomic profile of the yeast's early response to quinine, evidencing a marked activation of genes involved in the low-glucose response (e.g., CAT8, ADR1, MAL33, MTH1, and SNF3). We used a low inhibitory quinine concentration with no detectable effect on plasma membrane function, consistent with the absence of a general nutrient starvation response and suggesting that quinine-induced glucose limitation is a specific response. We have further shown that transport of [(14)C]glucose is inhibited by quinine, with kinetic data indicating competitive inhibition. Also, tested mutant strains deleted for genes encoding high- and low-affinity hexose transporters (HXT1 to HXT5, HXT8, and HXT10) exhibit resistance phenotypes, correlating with reduced levels of quinine accumulation in the mutants examined. These results suggest that the hexose transporters are facilitators of quinine uptake in S. cerevisiae, possibly through a competitive inhibition mechanism. Interestingly, P. falciparum is highly dependent on glucose uptake, which is mediated by the single-copy transporter PfHT1, a protein with high homology to yeast's hexose transporters. We propose that PfHT1 is an interesting candidate quinine target possibly involved in quinine import in P. falciparum, an uptake mechanism postulated in recent studies to occur through a still-unidentified importer(s).
机译:奎宁已被用于治疗疟疾已有多个世纪,并且仍被用于对抗严重的恶性疟原虫疟疾。然而,其与寄生虫的相互作用仍然知之甚少,尚有争议。在这项研究中,我们使用了酿酒酵母的真核生物模型来更好地理解奎宁的作用方式和细胞对该药物反应的潜在机制。我们获得了酵母对奎宁的早期反应的转录组图谱,证明了参与低葡萄糖反应的基因(例如CAT8,ADR1,MAL33,MTH1和SNF3)的显着激活。我们使用了低抑制性奎宁浓度,对质膜功能没有可检测的影响,这与缺乏一般的营养饥饿反应是一致的,并表明奎宁诱导的葡萄糖限制是一种特异性反应。我们进一步显示,奎宁抑制[(14)C]葡萄糖的转运,动力学数据表明竞争性抑制。同样,针对编码高亲和力和低亲和力己糖转运蛋白(HXT1至HXT5,HXT8和HXT10)的基因缺失的测试突变株显示出抗性表型,与所研究突变体中奎宁积聚的水平降低相关。这些结果表明,可能通过竞争性抑制机制,己糖转运蛋白是酿酒酵母中奎宁摄取的促进剂。有趣的是,恶性疟原虫高度依赖于葡萄糖的摄取,葡萄糖的摄取是由单拷贝转运蛋白PfHT1介导的,该蛋白与酵母的己糖转运蛋白具有高度同源性。我们建议PfHT1是一个有趣的候选奎宁靶标,可能与恶性疟原虫的奎宁导入有关,这是最近研究中推测的通过尚不清楚的进口商发生的摄取机制。

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