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铁依赖生长的全基因组分析揭示了一个液泡酸化所需的新型酵母基因。

Genome-wide analysis of iron-dependent growth reveals a novel yeast gene required for vacuolar acidification.

作者信息

Davis-Kaplan Sandra R, Ward Diane McVey, Shiflett Shelly L, Kaplan Jerry

机构信息

Division of Immunology and Cell Biology, Department of Pathology, School of Medicine, University of Utah, Salt Lake City, Utah 84132, USA.

出版信息

J Biol Chem. 2004 Feb 6;279(6):4322-9. doi: 10.1074/jbc.M310680200. Epub 2003 Nov 21.

Abstract

We conducted a genome-wide screen in the budding yeast Saccharomyces cerevisiae of 4,792 homozygous diploid deletions to identify genes that function in iron metabolism. Strains unable to grow on iron-restricted medium contained deletions of genes that encode the structural components of the high affinity iron transport system (FET3, FTR1), the iron-sensing transcription factor AFT1 or genes required for the assembly of the transport system. We also identified genes that were not previously known to play a role in iron metabolism. Deletion of the gene CWH36 resulted in a severe growth defect on iron-limited medium, as well as increased sensitivity to Congo red and calcofluor white. Iron transport studies demonstrated that Deltacwh36 cells have an inability to copper load apoFet3p. Furthermore, Deltacwh36 cells demonstrated additional phenotypes including distorted vacuole morphology and altered kinetics of FM4-64 trafficking. We show that Deltacwh36 cells have a defect in vacuolar acidification through the use of the pH-sensitive dye LysoSensor Green DND-189. In Deltacwh36 cells, the vacuolar H+-ATPase is not assembled and there are reduced levels of at least one subunit of the V0 complex. The open reading frame responsible for the Deltacwh36 phenotypes is YCL005W-A. This gene contains two introns, has homologues in other Saccharomyces strains, and shows weak homology to a component of the vacuolar H+-ATPase found in organisms as diverse as insect and cow.

摘要

我们在酿酒酵母中对4792个纯合二倍体缺失进行了全基因组筛选,以鉴定在铁代谢中起作用的基因。无法在铁限制培养基上生长的菌株含有编码高亲和力铁转运系统结构成分(FET3、FTR1)、铁感应转录因子AFT1的基因缺失,或转运系统组装所需的基因缺失。我们还鉴定出了以前未知在铁代谢中发挥作用的基因。基因CWH36的缺失导致在铁限制培养基上出现严重的生长缺陷,以及对刚果红和荧光增白剂的敏感性增加。铁转运研究表明,Δcwh36细胞无法将铜加载到脱辅基Fet3p上。此外,Δcwh36细胞表现出其他表型,包括液泡形态扭曲和FM4-64运输动力学改变。我们通过使用pH敏感染料LysoSensor Green DND-189表明,Δcwh36细胞存在液泡酸化缺陷。在Δcwh36细胞中,液泡H⁺-ATP酶未组装,V0复合体的至少一个亚基水平降低。导致Δcwh36表型的开放阅读框是YCL005W-A。该基因包含两个内含子,在其他酿酒酵母菌株中有同源物,并且与在昆虫和牛等多种生物中发现的液泡H⁺-ATP酶的一个成分具有弱同源性。

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