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Nickel quercetinase, a “promiscuous” metalloenzyme: metal incorporation and metal ligand substitution studies

机译:槲皮素镍酶,“混杂”金属酶:金属结合和金属配体取代研究

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Quercetinases are metal-dependent dioxygenases of the cupin superfamily. While fungal quercetinases are copper proteins, recombinant Streptomyces quercetinase (QueD) was previously described to be capable of incorporating Ni2+ and some other divalent metal ions. This raises the questions of which factors determine metal selection, and which metal ion is physiologically relevant. Metal occupancies of heterologously produced QueD proteins followed the order Ni  Co  Fe  Mn. Iron, in contrast to the other metals, does not support catalytic activity. QueD isolated from the wild-type Streptomyces sp. strain FLA contained mainly nickel and zinc. In vitro synthesis of QueD in a cell-free transcription-translation system yielded catalytically active protein when Ni2+ was present, and comparison of the circular dichroism spectra of in vitro produced proteins suggested that Ni2+ ions support correct folding. Replacement of individual amino acids of the 3His/1Glu metal binding motif by alanine drastically reduced or abolished quercetinase activity and affected its structural integrity. Only substitution of the glutamate ligand (E76) by histidine resulted in Ni- and Co-QueD variants that retained the native fold and showed residual catalytic activity. Heterologous formation of catalytically active, native QueD holoenzyme requires Ni2+, Co2+ or Mn2+, i.e., metal ions that prefer an octahedral coordination geometry, and an intact 3His/1Glu motif or a 4His environment of the metal. The observed metal occupancies suggest that metal incorporation into QueD is governed by the relative stability of the resulting metal complexes, rather than by metal abundance. Ni2+ most likely is the physiologically relevant cofactor of QueD of Streptomyces sp. FLA.
机译:槲皮素酶是铜杯超家族的金属依赖性双加氧酶。尽管真菌槲皮素酶是铜蛋白,但重组链霉菌槲皮素酶(QueD)先前已被描述为能够掺入Ni2 +和其他一些二价金属离子。这就提出了一个问题,即哪些因素决定金属的选择,以及哪些金属离子在生理上相关。异源产生的QueD蛋白的金属占有率遵循Ni> Co> Fe> Mn的顺序。与其他金属相比,铁不支持催化活性。从野生型链霉菌sp.QeD分离。菌株FLA主要包含镍和锌。当存在Ni2 +时,在无细胞转录-翻译系统中QueD的体外合成产生催化活性蛋白,体外产生的蛋白的圆二色性光谱的比较表明Ni2 +离子支持正确的折叠。丙氨酸替代3His / 1Glu金属结合基序中的单个氨基酸会大大降低或消除槲皮素酶的活性,并影响其结构完整性。仅用组氨酸取代谷氨酸配体(E76)会产生保留天然折叠并显示残留催化活性的Ni-和Co-QueD变体。具有催化活性的天然QueD全酶的异源形成需要Ni2 +,Co2 +或Mn2 +,即需要八面体配位几何形状的金属离子,以及完整的3His / 1Glu基序或金属的4His环境。观察到的金属占有率表明,金属掺入QueD是由所得金属配合物的相对稳定性而不是由金属丰度决定的。 Ni2 +最有可能是链霉菌QueD的生理相关辅助因子。 FLA。

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