首页> 美国卫生研究院文献>PLoS Clinical Trials >The Dps4 from Nostoc punctiforme ATCC 29133 is a member of His-type FOC containing Dps protein class that can be broadly found among cyanobacteria
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The Dps4 from Nostoc punctiforme ATCC 29133 is a member of His-type FOC containing Dps protein class that can be broadly found among cyanobacteria

机译:点状鼻孔菌ATCC 29133的Dps4是His型FOC的成员,其含有Dps蛋白类,在蓝细菌中广泛存在

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摘要

Dps proteins (DNA-binding proteins from starved cells) have been found to detoxify H2O2. At their catalytic centers, the ferroxidase center (FOC), Dps proteins utilize Fe2+ to reduce H2O2 and therefore play an essential role in the protection against oxidative stress and maintaining iron homeostasis. Whereas most bacteria accommodate one or two Dps, there are five different Dps proteins in Nostoc punctiforme, a phototrophic and filamentous cyanobacterium. This uncommonly high number of Dps proteins implies a sophisticated machinery for maintaining complex iron homeostasis and for protection against oxidative stress. Functional analyses and structural information on cyanobacterial Dps proteins are rare, but essential for understanding the function of each of the NpDps proteins. In this study, we present the crystal structure of NpDps4 in its metal-free, iron- and zinc-bound forms. The FOC coordinates either two iron atoms or one zinc atom. Spectroscopic analyses revealed that NpDps4 could oxidize Fe2+ utilizing O2, but no evidence for its use of the oxidant H2O2 could be found. We identified Zn2+ to be an effective inhibitor of the O2-mediated Fe2+ oxidation in NpDps4. NpDps4 exhibits a FOC that is very different from canonical Dps, but structurally similar to the atypical one from DpsA of Thermosynechococcus elongatus. Sequence comparisons among Dps protein homologs to NpDps4 within the cyanobacterial phylum led us to classify a novel FOC class: the His-type FOC. The features of this special FOC have not been identified in Dps proteins from other bacterial phyla and it might be unique to cyanobacterial Dps proteins.
机译:已经发现Dps蛋白(来自饥饿细胞的DNA结合蛋白)可以使H2O2解毒。 Dps蛋白在其催化中心,即铁氧化酶中心(FOC)利用Fe 2 + 还原H2O2,因此在保护氧化应激和维持铁稳态方面起着至关重要的作用。尽管大多数细菌可容纳一或两个Dps,但在一种能营养和丝状的蓝藻菌(Nostoc punctiforme)中存在五种不同的Dps蛋白。 Dps蛋白的数量异常高,这意味着维持复杂的铁稳态和防止氧化应激的复杂机制。蓝细菌Dps蛋白质的功能分析和结构信息很少,但对于理解每种NpDps蛋白质的功能而言却至关重要。在这项研究中,我们介绍了NpDps4的无金属,铁和锌结合形式的晶体结构。 FOC配位两个铁原子或一个锌原子。光谱分析表明,NpDps4可以利用O2氧化Fe 2 + ,但没有发现使用过氧化氢的证据。我们确定Zn 2 + 是NpDps4中O2介导的Fe 2 + 氧化的有效抑制剂。 NpDps4展示的FOC与经典Dps截然不同,但在结构上类似于来自嗜热嗜热球菌DpsA的非典型FOC。蓝细菌门内的Dps蛋白同源物与NpDps4之间的序列比较使我们对新型FOC类别进行了分类:His型FOC。这种特殊FOC的功能尚未在其他细菌门的Dps蛋白中鉴定出来,它可能是蓝细菌Dps蛋白所独有的。

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