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氯化钴是一种模拟缺氧的试剂,作用于致病性真菌新型隐球菌的固醇合成。

Cobalt chloride, a hypoxia-mimicking agent, targets sterol synthesis in the pathogenic fungus Cryptococcus neoformans.

作者信息

Lee Hyeseung, Bien Clara M, Hughes Adam L, Espenshade Peter J, Kwon-Chung Kyung J, Chang Yun C

机构信息

Laboratory of Clinical Infectious Diseases, NIAID, NIH, Bethesda, MD 20892, USA.

出版信息

Mol Microbiol. 2007 Aug;65(4):1018-33. doi: 10.1111/j.1365-2958.2007.05844.x. Epub 2007 Jul 21.

Abstract

We investigated the effects of the hypoxia-mimetic CoCl2 in the pathogenic fungus Cryptococcus neoformans and demonstrated that CoCl2 leads to defects in several enzymatic steps in ergosterol biosynthesis. Sterol defects were amplified in cells lacking components of the Sre1p-mediated oxygen-sensing pathway. Consequently, Sre1p and its binding partner Scp1p were essential for growth in the presence of CoCl2. Interestingly, high copies of a single gene involved in ergosterol biosynthesis, ERG25, rescued this growth defect. We show that the inhibitory effect of CoCl2 on scp1Delta and sre1Delta cells likely resulted from either an accumulation of non-viable methylated sterols or a decrease in the amount of ergosterol. Similar findings were also observed in the ascomycetous yeast, Schizosaccharomyces pombe, suggesting that the effects of CoCl2 on the Sre1p-mediated response are conserved in fungi. In addition, gene expression analysis revealed limited overlap between Sre1p-dependant gene activation in the presence of CoCl2 and low oxygen. The majority of genes similarly affected by both CoCl2 and low oxygen were involved in ergosterol synthesis and in iron/copper transport. This article identifies the Sre1p pathway as a common mechanism by which yeast cells sense and adapt to changes in both CoCl2 concentrations and oxygen levels.

摘要

我们研究了缺氧模拟物氯化钴对致病真菌新型隐球菌的影响,并证明氯化钴会导致麦角固醇生物合成中几个酶促步骤出现缺陷。在缺乏Sre1p介导的氧感应途径成分的细胞中,固醇缺陷会被放大。因此,Sre1p及其结合伴侣Scp1p对于在氯化钴存在下的生长至关重要。有趣的是,参与麦角固醇生物合成的单个基因ERG25的高拷贝数挽救了这种生长缺陷。我们表明,氯化钴对scp1Delta和sre1Delta细胞的抑制作用可能是由于无活性甲基化固醇的积累或麦角固醇量的减少所致。在子囊酵母粟酒裂殖酵母中也观察到了类似的结果,这表明氯化钴对Sre1p介导的反应的影响在真菌中是保守的。此外,基因表达分析显示,在氯化钴存在和低氧条件下,Sre1p依赖性基因激活之间的重叠有限。受氯化钴和低氧同样影响的大多数基因都参与麦角固醇合成以及铁/铜转运。本文确定Sre1p途径是酵母细胞感知并适应氯化钴浓度和氧水平变化的一种常见机制。

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