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本文引用的文献

1
Mechanisms for copper acquisition, distribution and regulation.铜的获取、分布及调控机制。
Nat Chem Biol. 2008 Mar;4(3):176-85. doi: 10.1038/nchembio.72.
2
Biochemistry. How cells control zinc homeostasis.生物化学。细胞如何控制锌稳态。
Science. 2007 Sep 21;317(5845):1695-6. doi: 10.1126/science.1149048.
3
Structure of the zinc transporter YiiP.锌转运蛋白YiiP的结构。
Science. 2007 Sep 21;317(5845):1746-8. doi: 10.1126/science.1143748. Epub 2007 Aug 23.
4
Crystal structure of the MgtE Mg2+ transporter.MgtE 镁离子转运蛋白的晶体结构。
Nature. 2007 Aug 30;448(7157):1072-5. doi: 10.1038/nature06093. Epub 2007 Aug 15.
5
Regulation of copper-dependent endocytosis and vacuolar degradation of the yeast copper transporter, Ctr1p, by the Rsp5 ubiquitin ligase.Rsp5泛素连接酶对酵母铜转运蛋白Ctr1p的铜依赖性内吞作用和液泡降解的调控
Traffic. 2007 Oct;8(10):1375-84. doi: 10.1111/j.1600-0854.2007.00616.x. Epub 2007 Jul 20.
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Distinct mechanisms for Ctr1-mediated copper and cisplatin transport.Ctr1介导的铜和顺铂转运的不同机制。
J Biol Chem. 2007 Sep 14;282(37):26775-26785. doi: 10.1074/jbc.M703973200. Epub 2007 Jul 12.
7
Function and regulation of human copper-transporting ATPases.人类铜转运ATP酶的功能与调控
Physiol Rev. 2007 Jul;87(3):1011-46. doi: 10.1152/physrev.00004.2006.
8
Crystal structure of a divalent metal ion transporter CorA at 2.9 angstrom resolution.分辨率为2.9埃的二价金属离子转运蛋白CorA的晶体结构。
Science. 2006 Jul 21;313(5785):354-7. doi: 10.1126/science.1127121.
9
Copper trafficking to the mitochondrion and assembly of copper metalloenzymes.铜向线粒体的转运及铜金属酶的组装。
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10
Crystal structure of the CorA Mg2+ transporter.CorA镁离子转运蛋白的晶体结构。
Nature. 2006 Apr 6;440(7085):833-7. doi: 10.1038/nature04642.

酵母Ctr1的铜转运活性通过其C末端响应过量铜而被下调。

Copper transport activity of yeast Ctr1 is down-regulated via its C terminus in response to excess copper.

作者信息

Wu Xiaobin, Sinani Devis, Kim Heejeong, Lee Jaekwon

机构信息

Redox Biology Center, Department of Biochemistry, University of Nebraska, Lincoln, Nebraska 68588-0664, USA.

出版信息

J Biol Chem. 2009 Feb 13;284(7):4112-22. doi: 10.1074/jbc.M807909200. Epub 2008 Dec 16.

DOI:10.1074/jbc.M807909200
PMID:19088072
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2640970/
Abstract

Copper is an essential yet toxic trace element. The Ctr1 family of proteins plays a critical role for copper uptake in eukaryotes. However, the mechanisms of action of Ctr1 are largely unknown. Our previous data demonstrated that copper transport induces conformational changes in the cytosolic C terminus of the yeast Saccharomyces cerevisiae Ctr1. To define the physiological significance of this molecular event and gain better insights into the mechanism of Ctr1-mediated copper uptake, we have characterized the functional roles of the Ctr1 C terminus. A Ctr1 mutant lacking the entire C-terminal cytosolic tail is functional in high affinity copper uptake; however, yeast cells expressing this mutant are extremely sensitive to excess copper. Toxic copper uptake is not attributed to elevated expression or distinct subcellular localization of this mutant as compared with wild type Ctr1. Further characterization of the function of Ctr1 containing deletions or site-directed mutations at the C terminus indicates a structural role for the C terminus in controlling Ctr1 activities. In response to excess copper, Ctr1-mediated copper transport is rapidly blocked in a C terminus-dependent mechanism associated with direct binding of copper. We propose that conformational changes in the cytosolic tail of yeast Ctr1 by copper sensing within this domain lead to the inhibition of Ctr1-mediated copper transport. These data suggest a new regulatory mechanism by which yeast cells maintain homeostatic copper acquisition.

摘要

铜是一种必需但又有毒的微量元素。Ctr1蛋白家族在真核生物摄取铜的过程中起着关键作用。然而,Ctr1的作用机制在很大程度上尚不清楚。我们之前的数据表明,铜转运可诱导酿酒酵母Ctr1胞质C末端的构象变化。为了确定这一分子事件的生理意义,并更好地了解Ctr1介导的铜摄取机制,我们对Ctr1 C末端的功能作用进行了表征。一个缺失整个C末端胞质尾巴的Ctr1突变体在高亲和力铜摄取方面具有功能;然而,表达该突变体的酵母细胞对过量铜极其敏感。与野生型Ctr1相比,有毒的铜摄取并非归因于该突变体表达升高或独特的亚细胞定位。对C末端含有缺失或定点突变的Ctr1功能的进一步表征表明,C末端在控制Ctr1活性方面具有结构作用。在过量铜的作用下,Ctr1介导的铜转运通过与铜直接结合相关的C末端依赖性机制迅速被阻断。我们提出,该结构域内的铜感应导致酵母Ctr1胞质尾巴的构象变化,从而抑制Ctr1介导的铜转运。这些数据提示了一种新的调节机制,酵母细胞通过该机制维持铜摄取的稳态。