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一项针对阳离子药物耐受性的全基因组筛选揭示了酿酒酵母中钾离子稳态的重要基因。

A genomewide screen for tolerance to cationic drugs reveals genes important for potassium homeostasis in Saccharomyces cerevisiae.

作者信息

Barreto Lina, Canadell David, Petrezsélyová Silvia, Navarrete Clara, Maresová Lydie, Peréz-Valle Jorge, Herrera Rito, Olier Iván, Giraldo Jesús, Sychrová Hana, Yenush Lynne, Ramos José, Ariño Joaquín

机构信息

Institut de Biotecnologia i Biomedicina, Universitat Autònoma de Barcelona, Cerdanyola del Vallès 08193, Barcelona, Spain.

出版信息

Eukaryot Cell. 2011 Sep;10(9):1241-50. doi: 10.1128/EC.05029-11. Epub 2011 Jul 1.

DOI:10.1128/EC.05029-11
PMID:21724935
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3187046/
Abstract

Potassium homeostasis is crucial for living cells. In the yeast Saccharomyces cerevisiae, the uptake of potassium is driven by the electrochemical gradient generated by the Pma1 H(+)-ATPase, and this process represents a major consumer of the gradient. We considered that any mutation resulting in an alteration of the electrochemical gradient could give rise to anomalous sensitivity to any cationic drug independently of its toxicity mechanism. Here, we describe a genomewide screen for mutants that present altered tolerance to hygromycin B, spermine, and tetramethylammonium. Two hundred twenty-six mutant strains displayed altered tolerance to all three drugs (202 hypersensitive and 24 hypertolerant), and more than 50% presented a strong or moderate growth defect at a limiting potassium concentration (1 mM). Functional groups such as protein kinases and phosphatases, intracellular trafficking, transcription, or cell cycle and DNA processing were enriched. Essentially, our screen has identified a substantial number of genes that were not previously described to play a direct or indirect role in potassium homeostasis. A subset of 27 representative mutants were selected and subjected to diverse biochemical tests that, in some cases, allowed us to postulate the basis for the observed phenotypes.

摘要

钾离子稳态对活细胞至关重要。在酿酒酵母中,钾离子的摄取由Pma1 H(+)-ATP酶产生的电化学梯度驱动,这一过程是该梯度的主要消耗途径。我们认为,任何导致电化学梯度改变的突变都可能使细胞对任何阳离子药物产生异常敏感性,而与药物的毒性机制无关。在此,我们描述了一项全基因组筛选,以寻找对潮霉素B、精胺和四甲基铵耐受性改变的突变体。226个突变菌株对这三种药物的耐受性均发生了改变(202个超敏,24个耐受性增强),且超过50%的菌株在低钾浓度(1 mM)下表现出强烈或中度的生长缺陷。蛋白激酶和磷酸酶、细胞内运输、转录或细胞周期及DNA加工等功能组出现富集。本质上,我们的筛选鉴定出了大量此前未被描述在钾离子稳态中起直接或间接作用的基因。我们挑选了27个具有代表性的突变体进行多种生化测试,在某些情况下,这使我们能够推测所观察到的表型的基础。

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本文引用的文献

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Ketoconazole and miconazole alter potassium homeostasis in Saccharomyces cerevisiae.酮康唑和咪康唑会改变酿酒酵母中的钾离子稳态。
Biochim Biophys Acta. 2011 Jan;1808(1):433-45. doi: 10.1016/j.bbamem.2010.09.025. Epub 2010 Oct 7.
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The lateral compartmentation of the yeast plasma membrane.酵母质膜的横向分隔。
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Lack of main K+ uptake systems in Saccharomyces cerevisiae cells affects yeast performance in both potassium-sufficient and potassium-limiting conditions.在钾充足和钾限制条件下,酿酒酵母细胞中主要 K+摄取系统的缺乏会影响酵母的性能。
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High-confidence mapping of chemical compounds and protein complexes reveals novel aspects of chemical stress response in yeast.化合物和蛋白质复合物的高可信度图谱揭示了酵母化学应激反应的新方面。
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Membrane hyperpolarization drives cation influx and fungicidal activity of amiodarone.膜超极化驱动阳离子内流和胺碘酮的杀菌活性。
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Key role for intracellular K+ and protein kinases Sat4/Hal4 and Hal5 in the plasma membrane stabilization of yeast nutrient transporters.细胞内钾离子以及蛋白激酶Sat4/Hal4和Hal5在酵母营养转运蛋白质膜稳定中起关键作用。
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