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Heterologous Expression and Characterization of the Manganese-Oxidizing Protein from Erythrobacter sp. Strain SD21

机译:红细菌锰氧化蛋白的异源表达与表征SD21株

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The manganese (Mn)-oxidizing protein (MopA) from Erythrobacter sp. strain SD21 is part of a unique enzymatic family that is capable of oxidizing soluble Mn(II). This enzyme contains two domains, an animal heme peroxidase domain, which contains the catalytic site, followed by a C-terminal calcium binding domain. Different from the bacterial Mn-oxidizing multicopper oxidase enzymes, little is known about MopA. To gain a better understanding of MopA and its role in Mn(II) oxidation, the 238-kDa full-length protein and a 105-kDa truncated protein containing only the animal heme peroxidase domain were cloned and heterologously expressed in Escherichia coli . Despite having sequence similarity to a peroxidase, hydrogen peroxide did not stimulate activity, nor was activity significantly decreased in the presence of catalase. Both pyrroloquinoline quinone (PQQ) and hemin increased Mn-oxidizing activity, and calcium was required. The K_(m) for Mn(II) of the full-length protein in cell extract was similar to that of the natively expressed protein, but the K_(m) value for the truncated protein in cell extract was approximately 6-fold higher than that of the full-length protein, suggesting that the calcium binding domain may aid in binding Mn(II). Characterization of the heterologously expressed MopA has provided additional insight into the mechanism of bacterial Mn(II) oxidation, which will aid in understanding the role of MopA and Mn oxidation in bioremediation and biogeochemical cycling.
机译:红杆菌属的锰(Mn)氧化蛋白(MopA)。 SD21菌株是独特的酶家族的一部分,该酶家族能够氧化可溶性Mn(II)。该酶包含两个域,一个动物血红素过氧化物酶域,其中包含催化位点,其次是一个C端钙结合域。与细菌Mn氧化多铜氧化酶不同,对MopA知之甚少。为了更好地了解MopA及其在Mn(II)氧化中的作用,克隆了仅包含动物血红素过氧化物酶结构域的238 kDa全长蛋白和105 kDa的截短蛋白,并在大肠杆菌中异源表达。尽管与过氧化物酶具有序列相似性,但是过氧化氢没有刺激活性,在过氧化氢酶的存在下活性也没有显着降低。吡咯并喹啉醌(PQQ)和血红素均增加Mn的氧化活性,因此需要钙。细胞提取物中全长蛋白质的Mn(II)的K_(m)与天然表达的蛋白质的K_(m)相似,但细胞提取物中截短的蛋白质的K_(m)值比其高约6倍。这与全长蛋白质的氨基酸结构相似,表明钙结合结构域可能有助于结合Mn(II)。异源表达的MopA的表征为细菌Mn(II)氧化的机理提供了更多的见识,这将有助于理解MopA和Mn氧化在生物修复和生物地球化学循环中的作用。

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