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首页> 外文期刊>Journal of Molecular Biology >Crystal Structure and Biochemical Properties of the Human Mitochondrial Ferritin and its Mutant Ser144Ala.
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Crystal Structure and Biochemical Properties of the Human Mitochondrial Ferritin and its Mutant Ser144Ala.

机译:人线粒体铁蛋白及其突变体Ser144Ala的晶体结构和生化特性。

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摘要

Mitochondrial ferritin is a recently identified protein precursor encoded by an intronless gene. It is specifically taken up by the mitochondria and processed to a mature protein that assembles into functional ferritin shells. The full mature recombinant protein and its S144A mutant were produced to study structural and functional properties. They yielded high quality crystals from Mg(II) solutions which diffracted up to 1.38A resolution. The 3D structures of the two proteins resulted very similar to that of human H-ferritin, to which they have high level of sequence identity ( approximately 80%). Metal-binding sites were identified in the native crystals and in those soaked in Mn(II) and Zn(II) solutions. The ferroxidase center binds binuclear iron at the sites A and B, and the structures showed that the A site was always fully occupied by Mg(II), Mn(II) or Zn(II), while the occupancy of the B site was variable. In addition, distinct Mg(II) and Zn(II)-binding sites were found in the 3-fold axes to block the hydrophilic channels. Other metal-binding sites, never observed before in H-ferritin, were found on the cavity surface near the ferroxidase center and near the 4-fold axes. Mitochondrial ferritin showed biochemical properties remarkably similar to those of human H-ferritin, except for the difficulty in renaturing to yield ferritin shells and for a reduced ( approximately 41%) rate in ferroxidase activity. This was partially rescued by the substitution of the bulkier Ser144 with Ala, which occurs in H-ferritin. The residue is exposed on a channel that connects the ferroxidase center with the cavity. The finding that the mutation increased both catalytic activity and the occupancy of the B site demonstrated that the channel is functionally important. In conclusion, the present data define the structure of human mitochondrial ferritin and provide new data on the iron pathways within the H-type ferritin shell.
机译:线粒体铁蛋白是最近被无内含子基因编码的蛋白质前体。它被线粒体特异性吸收,加工成成熟的蛋白质,组装成功能性铁蛋白壳。产生了完全成熟的重组蛋白及其S144A突变体以研究结构和功能特性。他们从Mg(II)溶液中产生了高品质的晶体,衍射至1.38A的分辨率。两种蛋白质的3D结构产生的结果与人H-铁蛋白非常相似,它们具有高度的序列同一性(大约80%)。在天然晶体中以及浸泡在Mn(II)和Zn(II)溶液中的金属中都发现了金属结合位点。亚铁氧化酶中心在位点A和B结合双核铁,结构表明A位点总是被Mg(II),Mn(II)或Zn(II)完全占据,而B位点的占有率却是可变的。此外,在3折轴上发现了独特的Mg(II)和Zn(II)结合位点,以阻断亲水通道。在H-铁蛋白中从未观察到的其他金属结合位点在铁氧化酶中心附近和4倍轴附近的腔表面上发现。线粒体铁蛋白显示出与人类H-铁蛋白非常相似的生化特性,除了难以复性以产生铁蛋白壳和铁氧化酶活性降低(约41%)外。通过在H-铁蛋白中出现的更大的Ser144被Ala取代,部分地得到了挽救。残留物暴露在将亚铁氧化酶中心与腔连接的通道上。突变增加了催化活性和B位点的占有率的发现表明该通道在功能上很重要。总之,本数据定义了人类线粒体铁蛋白的结构,并提供了有关H型铁蛋白壳内铁途径的新数据。

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