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本文引用的文献

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Diversity of Fe entry and oxidation in ferritins.铁蛋白中铁进入及氧化的多样性。
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Study of ferritin self-assembly and heteropolymer formation by the use of Fluorescence Resonance Energy Transfer (FRET) technology.利用荧光共振能量转移(FRET)技术研究铁蛋白的自组装和杂多聚合物的形成。
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Solving Biology's Iron Chemistry Problem with Ferritin Protein Nanocages.利用铁蛋白蛋白纳米笼解决生物学的铁化学问题。
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Unity in the biochemistry of the iron-storage proteins ferritin and bacterioferritin.铁储存蛋白铁蛋白和细菌铁蛋白在生物化学上的统一性。
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Ferritin light-chain subunits: key elements for the electron transfer across the protein cage.铁蛋白轻链亚基:蛋白质笼中电子传递的关键元件。
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Functionality of the three-site ferroxidase center of Escherichia coli bacterial ferritin (EcFtnA).大肠杆菌细菌铁蛋白(EcFtnA)三部位铁氧化酶中心的功能。
Biochemistry. 2014 Jan 28;53(3):483-95. doi: 10.1021/bi401517f. Epub 2014 Jan 14.
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The significance of ferritin in cancer: anti-oxidation, inflammation and tumorigenesis.铁蛋白在癌症中的意义:抗氧化、炎症与肿瘤发生。
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8
Re-engineering protein interfaces yields copper-inducible ferritin cage assembly.重新设计蛋白质界面可产生铜诱导的铁蛋白笼组装。
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pH-dependent structures of ferritin and apoferritin in solution: disassembly and reassembly.溶液中 ferritin 和 apoferritin 的 pH 依赖性结构:解组装和重新组装。
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Iron core mineralisation in prokaryotic ferritins.原核铁蛋白中的铁芯矿化作用。
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重组杂合人铁蛋白中的铁氧化与核心形成

Iron Oxidation and Core Formation in Recombinant Heteropolymeric Human Ferritins.

作者信息

Mehlenbacher Matthew, Poli Maura, Arosio Paolo, Santambrogio Paolo, Levi Sonia, Chasteen N Dennis, Bou-Abdallah Fadi

机构信息

Department of Chemistry, State University of New York , Potsdam, New York 13676, United States.

Department of Molecular and Translational Medicine, University of Brescia , 25121 Brescia, Italy.

出版信息

Biochemistry. 2017 Aug 1;56(30):3900-3912. doi: 10.1021/acs.biochem.7b00024. Epub 2017 Jul 18.

DOI:10.1021/acs.biochem.7b00024
PMID:28636371
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5938754/
Abstract

In animals, the iron storage and detoxification protein, ferritin, is composed of two functionally and genetically distinct subunit types, H (heavy) and L (light), which co-assemble in various ratios with tissue specific distributions to form shell-like protein structures of 24 subunits within which a mineralized iron core is stored. The H-subunit possesses a ferroxidase center (FC) that catalyzes Fe(II) oxidation, whereas the L-subunit does not. To assess the role of the L-subunit in iron oxidation and core formation, two human recombinant heteropolymeric ferritins, designated H-rich and L-rich with ratios of ∼20H:4L and ∼22L:2H, respectively, were employed and compared to the human homopolymeric H-subunit ferritin (HuHF). These heteropolymeric ferritins have a composition similar to the composition of those found in hearts and brains (i.e., H-rich) and in livers and spleens (i.e., L-rich). As for HuHF, iron oxidation in H-rich ferritin was found to proceed with a 2:1 Fe(II):O stoichiometry at an iron level of 2 Fe(II) atoms/H-subunit with the generation of HO. The HO reacted with additional Fe(II) in a 2:1 Fe(II):HO ratio, thus avoiding the production of hydroxyl radical. A μ-1,2-peroxo-diFe(III) intermediate was observed at the FC of H-rich ferritin as for HuHF. Importantly, the H-rich protein regenerated full ferroxidase activity more rapidly than HuHF did and additionally formed larger iron cores, indicating dual roles for the L-subunit in facilitating iron turnover at the FC and in mineralization of the core. The L-rich ferritin, while also facilitating iron oxidation at the FC, additionally promoted oxidation at the mineral surface once the iron binding capacity of the FC was exceeded.

摘要

在动物体内,铁储存和解毒蛋白铁蛋白由两种功能和基因上不同的亚基类型组成,即H(重)亚基和L(轻)亚基,它们以不同比例共同组装并具有组织特异性分布,形成24个亚基的壳状蛋白质结构,其中储存着矿化的铁核心。H亚基具有催化Fe(II)氧化的亚铁氧化酶中心(FC),而L亚基则没有。为了评估L亚基在铁氧化和核心形成中的作用,使用了两种人重组杂合铁蛋白,分别命名为富H型和富L型,其比例分别约为20H:4L和22L:2H,并与人类纯合H亚基铁蛋白(HuHF)进行比较。这些杂合铁蛋白的组成与在心脏和大脑中发现的(即富H型)以及在肝脏和脾脏中发现的(即富L型)铁蛋白的组成相似。至于HuHF,发现富H型铁蛋白中的铁氧化以2:1的Fe(II):O化学计量比进行,铁水平为2个Fe(II)原子/H亚基,并产生HO。HO以2:1的Fe(II):HO比例与额外的Fe(II)反应,从而避免了羟基自由基的产生。与HuHF一样,在富H型铁蛋白的FC处观察到了μ-1,2-过氧二铁(III)中间体。重要的是,富H型蛋白质比HuHF更快地恢复了完全的亚铁氧化酶活性,并额外形成了更大的铁核心,这表明L亚基在促进FC处的铁周转和核心矿化方面具有双重作用。富L型铁蛋白虽然也促进了FC处的铁氧化,但一旦FC的铁结合能力被超过,它还会促进矿物表面的氧化。