Suppr超能文献

拟南芥锌离子ATP酶HMA2的调节性N端金属结合结构域与锌离子的新型配位作用

Novel Zn2+ coordination by the regulatory N-terminus metal binding domain of Arabidopsis thaliana Zn(2+)-ATPase HMA2.

作者信息

Eren Elif, González-Guerrero Manuel, Kaufman Brad M, Argüello José M

机构信息

Department of Chemistry and Biochemistry, Worcester Polytechnic Institute, Worcester, Massachusetts 01609, USA.

出版信息

Biochemistry. 2007 Jul 3;46(26):7754-64. doi: 10.1021/bi7001345. Epub 2007 Jun 6.

Abstract

Arabidopsis thaliana HMA2 is a Zn2+ transporting P1B-type ATPase required for maintaining plant metal homeostasis. HMA2 and all eukaryote Zn2+-ATPases have unique conserved N- and C-terminal sequences that differentiate them from other P1B-type ATPases. Homology modeling and structural comparison by circular dichroism indicate that the 75 amino acid long HMA2 N-terminus shares the betaalphabetabetaalpha folding present in most P1B-type ATPase N-terminal metal binding domains (N-MBDs). However, the characteristic metal binding sequence CysXXCys is replaced by Cys17CysXXGlu21, a sequence present in all plant Zn2+-ATPases. The isolated HMA2 N-MBD fragment binds a single Zn2+ (Kd 0.18 microM), Cd2+ (Kd 0.27 microM), or, with less affinity, Cu+ (Kd 13 microM). Mutagenesis studies indicate that Cys17, Cys18, and Glu21 participate in Zn2+ and Cd2+ coordination, while Cys17 and Glu21, but not Cys18, are required for Cu+ binding. Interestingly, the Glu21Cys mutation that generates a CysCysXXCys site is unable to bind Zn2+ or Cd2+ but it binds Cu+ with affinity (Kd 1 microM) higher than wild type N-MBD. Truncated HMA2 lacking the N-MBD showed reduced ATPase activity without significant changes in metal binding to transmembrane metal binding sites. Likewise, ATPase activity of HMA2 carrying mutations Cys17Ala, Cys18Ala, and Glu21Ala/Cys was also reduced but showed a metal dependence similar to the wild type enzyme. These observations suggest that plant Zn2+-ATPase N-MBDs have a folding and function similar to Cu+-ATPase N-MBDs. However, the unique Zn2+ coordination via two thiols and a carboxyl group provides selective binding of the activating metals to these regulatory domains. Metal binding through these side chains, although found in different sequences, appears as a common feature of both bacterial and eukaryotic Zn2+-ATPase N-MBDs.

摘要

拟南芥HMA2是一种锌离子转运P1B型ATP酶,对于维持植物金属稳态至关重要。HMA2以及所有真核生物的锌离子ATP酶都具有独特的保守N端和C端序列,这使其区别于其他P1B型ATP酶。通过同源建模和圆二色性进行的结构比较表明,长度为75个氨基酸的HMA2 N端具有大多数P1B型ATP酶N端金属结合结构域(N-MBD)中存在的β-α-β-α折叠。然而,特征性的金属结合序列CysXXCys被Cys17CysXXGlu21取代,这一序列存在于所有植物锌离子ATP酶中。分离得到的HMA2 N-MBD片段可结合单个锌离子(解离常数Kd为0.18微摩尔)、镉离子(Kd为0.27微摩尔),或者以较低亲和力结合铜离子(Kd为13微摩尔)。诱变研究表明,Cys17、Cys18和Glu21参与锌离子和镉离子的配位,而Cys17和Glu21(而非Cys18)是结合铜离子所必需的。有趣的是,产生CysCysXXCys位点的Glu21Cys突变无法结合锌离子或镉离子,但它结合铜离子的亲和力(Kd为1微摩尔)高于野生型N-MBD。缺失N-MBD的截短型HMA2显示ATP酶活性降低,而与跨膜金属结合位点的金属结合没有显著变化。同样,携带Cys17Ala、Cys18Ala和Glu21Ala/Cys突变的HMA2的ATP酶活性也降低,但显示出与野生型酶相似的金属依赖性。这些观察结果表明,植物锌离子ATP酶的N-MBD具有与铜离子ATP酶N-MBD相似的折叠和功能。然而,通过两个硫醇和一个羧基进行的独特锌离子配位为激活金属提供了对这些调节结构域的选择性结合。通过这些侧链进行的金属结合,尽管存在于不同序列中,但似乎是细菌和真核生物锌离子ATP酶N-MBD的共同特征。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验