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一种具有宽松金属选择性特征的铜(I)感应 ArsR 家族金属传感器蛋白。

A Cu(I)-sensing ArsR family metal sensor protein with a relaxed metal selectivity profile.

作者信息

Liu Tong, Chen Xiaohua, Ma Zhen, Shokes Jacob, Hemmingsen Lars, Scott Robert A, Giedroc David P

机构信息

Department of Biochemistry and Biophysics, Texas A&M University, College Station, Texas 77843-2128, USA.

出版信息

Biochemistry. 2008 Oct 7;47(40):10564-75. doi: 10.1021/bi801313y. Epub 2008 Sep 17.

Abstract

ArsR (or ArsR/SmtB) family metalloregulatory homodimeric repressors collectively respond to a wide range of metal ion inducers in regulating homeostasis and resistance of essential and nonessential metal ions in bacteria. BxmR from the cyanobacterium Osciliatoria brevis is the first characterized ArsR protein that senses both Cu (I)/Ag (I) and divalent metals Zn (II)/Cd (II) in cells by regulating the expression of a P-type ATPase efflux pump (Bxa1) and an intracellular metallothionein (BmtA). We show here that both pairs of predicted alpha3N and alpha5 sites bind metal ions, but with distinct physicochemical and functional metal specificities. Inactivation of the thiophilic alpha3N site via mutation (C77S) abolishes regulation by both Cd (II) and Cu (I), while Zn (II) remains a potent allosteric negative effector of operator/promoter binding (Delta G c >or= +3.2 kcal mol (-1)). In contrast, alpha5 site mutant retains regulation by all four metal ions, albeit with a smaller coupling free energy (Delta G c approximately +1.7 (+/-0.1) kcal mol (-1)). Unlike the other metals ions, the BxmR dimer binds 4 mol equiv of Cu (I) to form an alpha3N binuclear Cu (I) 2S 4 cluster by X-ray absorption spectroscopy. BxmR is thus distinguishable from other closely related ArsR family sensors, in having evolved a metalloregulatory alpha3N site that can adopt an expanded range of coordination chemistries while maintaining redundancy in the response to Zn (II). The evolutionary implications of these findings for the ArsR metal sensor family are discussed.

摘要

ArsR(或ArsR/SmtB)家族金属调节同型二聚体阻遏蛋白共同响应多种金属离子诱导剂,以调节细菌中必需和非必需金属离子的稳态及抗性。来自短颤蓝细菌的BxmR是首个被鉴定的ArsR蛋白,它通过调节P型ATPase外排泵(Bxa1)和细胞内金属硫蛋白(BmtA)的表达来感知细胞中的Cu(I)/Ag(I)和二价金属Zn(II)/Cd(II)。我们在此表明,预测的α3N和α5位点这两对都能结合金属离子,但具有不同的物理化学和功能金属特异性。通过突变(C77S)使亲硫性α3N位点失活,消除了Cd(II)和Cu(I)的调节作用,而Zn(II)仍然是操纵子/启动子结合的有效变构负效应物(ΔGc≥ +3.2 kcal mol⁻¹)。相比之下,α5位点突变体保留了对所有四种金属离子的调节作用,尽管偶联自由能较小(ΔGc约为 +1.7(±0.1)kcal mol⁻¹)。与其他金属离子不同,通过X射线吸收光谱法,BxmR二聚体结合4摩尔当量的Cu(I)形成α3N双核Cu(I)₂S₄簇。因此,BxmR与其他密切相关的ArsR家族传感器不同,它进化出了一个金属调节α3N位点,该位点可以采用更广泛的配位化学,同时在对Zn(II)的响应中保持冗余。讨论了这些发现对ArsR金属传感器家族的进化意义。

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