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铁(II)结合DNA时引发大肠杆菌铁摄取调节蛋白的构象变化:一项分子模拟研究

Iron(II) triggered conformational changes in Escherichia coli fur upon DNA binding: a study using molecular modeling.

作者信息

Hamed Mazen Y, Al-Jabour Salih

机构信息

Computational Science Program, Chemistry Department, Birzeit University, PO Box 14, Birzeit, Palestine.

出版信息

J Mol Graph Model. 2006 Oct;25(2):234-46. doi: 10.1016/j.jmgm.2005.12.010. Epub 2006 Jan 27.

Abstract

In order to identify the Fur dimerization domain, a three-dimensional structure of the ferric uptake regulation protein from Escherichia coli (Fur EC) was determined using homology modeling and energy minimization. The Fur monomer consists of turn- helix -turn motif on the N-terminal domain, followed by another helix-turn-helix-turn motif, and two beta-strands separated by a turn which forms the wing. The C-terminal domain, separated by a long coil from the N-terminal, and consisting of two anti parallel beta strands, and a turn-helix-turn-helix-turn motif. Residues in central domain were found to aid the dimer formation, residues 45-70 as evident in the calculated distances; this region is rich in hydrophobic residues. Most interactions occur between residues Val55, Leu53, Gln52, Glu49 and Tyr56 with closest contacts occurring at residues 49-56. These residues are part of an alpha-helix (alpha(4)) near the N-terminal. Upon raising the Fe(2+) concentration the binding of Fur dimer to DNA was enhanced, this was evident when, the Fur EC dimer was docked onto DNA "iron box" (it was found to bind the AT-rich region) and upon addition of Fe(2+) the helices near the N-terminal bound to the major groove of the DNA. Addition of high Fe(2+) concentration triggered further conformational changes in the Fur dimer as was measured by distances between the two subunits, Fe(2+) mediated the Fur binding to DNA by attaching itself to the DNA. At the same time DNA changed conformation as was evident in the distortion in the backbone and the shrinking of major groove distance from 11.4 to 9.3A. Two major Fe(2+) sites were observed on the C-terminal domain: site 1, the traditional Zn site, the cavity contains the residues Cys92, Cys95, Asp137, Asp141, Arg139, Glu 140, His 145 and His 143 at distances range from 1.3 to 2.2A. Site 2 enclave consists of His71, Ile50, Asn72, Gly97, Asp105 and Ala109 at very close proximity to Fe(2+). The closest contacts between Fur dimer and DNA at the AT-rich region were at residues Ala11, Gly12, Leu13, Pro18 and Arg19 mostly hydrophobic residues near the N-terminal domain. Close contacts repeated at His87, His88 and Arg112, and a third region near the C-terminal at Asn137, Arg 139, Glu140, Asn141, His143, Asn141 and His145. Fur dimer has three major contact regions with DNA, the first on the N-terminal domain, a second smaller region at His87, His88 and Arg112 mediated by Fe(2+) ions, and a third region on the C-terminal domain consisting mainly of hydrophobic contacts and mediated by Fe(2+) ions at high concentration.

摘要

为了确定铁摄取调节蛋白(Fur)的二聚化结构域,利用同源建模和能量最小化方法确定了来自大肠杆菌的铁摄取调节蛋白(Fur EC)的三维结构。Fur单体在N端结构域由转角-螺旋-转角基序组成,接着是另一个螺旋-转角-螺旋-转角基序,以及由一个转角分隔的两条β链,该转角形成了侧翼。C端结构域通过一个长螺旋与N端分隔开,由两条反平行的β链和一个螺旋-转角-螺旋-转角基序组成。发现中央结构域中的残基有助于二聚体形成,从计算距离来看,45-70位残基很明显;该区域富含疏水残基。大多数相互作用发生在Val55、Leu53、Gln52、Glu49和Tyr56残基之间,最紧密的接触发生在49-56位残基处。这些残基是N端附近一个α螺旋(α(4))的一部分。提高Fe(2+)浓度时,Fur二聚体与DNA的结合增强,当Fur EC二聚体对接至DNA“铁盒”(发现其结合富含AT的区域)以及加入Fe(2+)后N端附近的螺旋与DNA的大沟结合时,这一点很明显。加入高浓度的Fe(2+)会引发Fur二聚体进一步的构象变化,这通过两个亚基之间的距离来衡量,Fe(2+)通过附着于DNA介导Fur与DNA的结合。同时DNA发生构象变化,这在主链的扭曲以及大沟距离从11.4 Å缩小至9.3 Å中很明显。在C端结构域观察到两个主要的Fe(2+)位点:位点1,传统的锌位点,该腔包含距离在1.3至2.2 Å范围内的Cys92、Cys95、Asp137、Asp141、Arg139、Glu 140、His 145和His 143残基。位点2区域由His71、Ile50、Asn72、Gly97、Asp105和Ala109组成,它们与Fe(2+)非常接近。Fur二聚体与富含AT区域的DNA之间最紧密的接触发生在Ala11、Gly12、Leu13、Pro18和Arg19残基处,这些大多是N端结构域附近的疏水残基。在His87、His88和Arg112处以及C端附近的第三个区域Asn137、Arg 139、Glu140、Asn141、His143、Asn141和His145处重复出现紧密接触。Fur二聚体与DNA有三个主要接触区域,第一个在N端结构域,第二个较小区域在His87、His88和Arg112处,由Fe(+)离子介导,第三个区域在C端结构域,主要由疏水接触组成,且在高浓度Fe(2+)离子介导下形成。

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