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Iron at the center of ferritin, metal/oxygen homeostasis and novel dietary strategies

机译:铁在铁蛋白,金属/氧稳态和新型饮食策略的中心

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摘要

Bioiron _ central to respiration, photosynthesis and DNA synthesis and complicated by radical chemistry with oxygen _ depends on ferritin, the super family of protein nanocages (maxi-ferritins in humans, animals, plants and bacteria, and mini-ferritins, also called DPS proteins, in bacteria) for iron and oxygen control. Regulation of ferritin synthesis, best studied in animals, uses DNA transcription and mRNA translation check points. Ferritin is a member of both the "oxidant stress response" gene family that includes thioredoxin reductase and quinine reductase, and a member of the iron responsive gene family that includes ferroportin and mt-aconitase ferritin DNA regulation responds preferentially to oxidant response inducers and ferritin mRNA to iron inducers; heme confers regulator synergy. Ferritin proteins manage iron and oxygen, with ferroxidase sites and iron + oxygen substrates to form mineral of both Fe and O atoms; maxi-ferritins contribute more to cellular iron metabolism and mini-ferritins to stress responses. Iron recovery from ferritin is controlled by gated protein pores, possibly contributing to iron absorption from ferritin, a significant dietary iron source. Ferritin gene regulation is a model for integrating DNA/mRNA controls, while ferritin protein function is central to molecular nutrition cellular metabolism at the crossroads of iron and oxygen in biology
机译:生物铁是呼吸,光合作用和DNA合成的中心,并与氧气进行自由基化学反应很复杂_取决于铁蛋白,蛋白质纳米笼子的超家族(人,动物,植物和细菌中的最大铁蛋白以及微型铁蛋白,也称为DPS蛋白) (在细菌中),用于控制铁和氧。在动物中进行了最深入研究的铁蛋白合成调控,使用DNA转录和mRNA翻译检查点。铁蛋白既是包括硫氧还蛋白还原酶和奎宁还原酶在内的“氧化应激反应”基因家族的成员,也是包括铁转运蛋白和mt-阿尼卡宁酶的铁响应基因家族的成员铁蛋白DNA调节优先响应于氧化反应诱导剂和铁蛋白mRNA铁诱导剂;血红素赋予监管机构协同作用。铁蛋白蛋白通过铁氧化物酶位点和铁+氧底物来控制铁和氧,从而形成铁和氧原子的矿物质。最大铁蛋白对细胞铁代谢的贡献更大,而迷你铁蛋白对应激反应的贡献更大。铁蛋白的铁回收受门控蛋白质孔的控制,这可能有助于铁蛋白(一种重要的饮食铁源)吸收铁。铁蛋白基因调控是整合DNA / mRNA调控的模型,而铁蛋白蛋白的功能对于生物学上铁和氧交叉的分子营养细胞代谢至关重要

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