At least three ferritins are found in the bacterium Escherichia coli, the heme-containing bacterioferritin (EcBFR) and two non-heme bacterial ferritins (EcFtnA and EcFtnB). In addition to the conserved A- and B-sites of the diiron ferroxidase center, EcFtnA has a third iron-binding site (the C-site) of unknown function that is nearby the diiron site. In the present work, the complex chemistry of iron oxidation and deposition in EcFtnA has been further defined through a combination of oximetry, pH stat, stopped-flow and conventional kinetics, UV-visible, fluorescence and EPR spectroscopic measurements on the wild-type protein and site-directed variants of the A-, B- and C-sites. The data reveal that, while H2O2 is a product of dioxygen reduction in EcFtnA and oxidation occurs with a stoichiometry of Fe(II)/O2 ~ 3:1, most of the H2O2 produced is consumed in subsequent reactions with a 2:1 Fe(II)/H2O2 stoichiometry, thus suppressing hydroxyl radical formation. While the A- and B-sites are essential for rapid iron oxidation, the C-site slows oxidation and suppresses iron turnover at the ferroxidase center. A tyrosyl radical, assigned to Tyr24 near the ferroxidase center, is formed during iron oxidation and its possible significance to the function of the protein is discussed. Taken as a whole, the data indicate that there are multiple iron-oxidation pathways in EcFtnA with O2 and H2O2 as oxidants. Furthermore, our data do not support a universal mechanism for iron oxidation in all ferritins whereby the C-site acts as transit site, as recently proposed.
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机译:在细菌大肠杆菌中至少发现了三种铁蛋白,含血红素的细菌铁蛋白(EcBFR)和两种非血红素细菌铁蛋白(EcFtnA和EcFtnB)。除二铁亚铁氧化酶中心保守的A和B位外,EcFtnA在二铁位点附近还有一个功能未知的铁结合位点(C位)。在当前的工作中,通过结合血氧测定法,pH stat,停止流和常规动力学,紫外可见光谱,荧光和EPR光谱测量的组合,进一步定义了EcFtnA中铁氧化和沉积的复杂化学反应以及A,B和C网站的针对网站的变体。数据显示,虽然H2O2是EcFtnA中双氧还原的产物,并且氧化反应发生在化学计量为Fe(II)/ O2〜3:1的情况下,但随后产生的大多数H2O2却以2:1 Fe( II)/ H 2 O 2化学计量,因此抑制了羟基自由基的形成。尽管A和B位对于快速的铁氧化至关重要,但C位会减缓氧化并抑制铁氧化酶中心的铁转换。在铁氧化过程中形成了一个在铁氧化酶中心附近分配给Tyr24的酪氨酸基团,并讨论了其对蛋白质功能的可能意义。总体而言,数据表明在以O2和H2O2为氧化剂的EcFtnA中存在多个铁氧化途径。此外,我们的数据不支持所有铁蛋白中铁氧化的普遍机制,如最近所提出的那样,C位是转运位。
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