首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Thioredoxin the Processivity Factor Sequesters an Exposed Cysteine in the Thumb Domain of Bacteriophage T7 DNA Polymerase
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Thioredoxin the Processivity Factor Sequesters an Exposed Cysteine in the Thumb Domain of Bacteriophage T7 DNA Polymerase

机译:硫氧还蛋白生产力的因素在噬菌体T7 DNA聚合酶的拇指域中隔离暴露的半胱氨酸。

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摘要

Gene 5 protein (gp5) of bacteriophage T7 is a non-processive DNA polymerase. It achieves processivity by binding to Escherichia coli thioredoxin (trx). gp5/trx complex binds tightly to a primer-DNA template enabling the polymerization of hundreds of nucleotides per binding event. gp5 contains 10 cysteines. Under non-reducing condition, exposed cysteines form intermolecular disulfide linkages resulting in the loss of polymerase activity. No disulfide linkage is detected when Cys-275 and Cys-313 are replaced with serines. Cys-275 and Cys-313 are located on loop A and loop B of the thioredoxin binding domain, respectively. Replacement of either cysteine with serine (gp5-C275S, gp5-C313S) drastically decreases polymerase activity of gp5 on dA350/dT25. On this primer-template gp5/trx in which Cys-313 or Cys-275 is replaced with serine have 50 and 90%, respectively, of the polymerase activity observed with wild-type gp5/trx. With single-stranded M13 DNA as a template gp5-C275S/trx retains 60% of the polymerase activity of wild-type gp5/trx. In contrast, gp5-C313S/trx has only one-tenth of the polymerase activity of wild-type gp5/trx on M13 DNA. Both wild-type gp5/trx and gp5-C275S/trx catalyze the synthesis of the entire complementary strand of M13 DNA, whereas gp5-C313S/trx has difficulty in synthesizing DNA through sites of secondary structure. gp5-C313S fails to form a functional complex with trx as measured by the apparent binding affinity as well as by the lack of a physical interaction with thioredoxin during hydroxyapatite-phosphate chromatography. Small angle x-ray scattering reveals an elongated conformation of gp5-C313S in comparison to a compact and spherical conformation of wild-type gp5.
机译:T7噬菌体的基因5蛋白(gp5)是一种非持续性DNA聚合酶。它通过与大肠杆菌硫氧还蛋白(trx)结合来实现生产能力。 gp5 / trx复合物与引物-DNA模板紧密结合,每个结合事件可聚合数百个核苷酸。 gp5包含10个半胱氨酸。在非还原条件下,暴露的半胱氨酸形成分子间二硫键,导致聚合酶活性丧失。当Cys-275和Cys-313替换为丝氨酸时,未检测到二硫键。 Cys-275和Cys-313分别位于硫氧还蛋白结合结构域的环A和环B上。用丝氨酸(gp5-C275S,gp5-C313S)替换半胱氨酸会大大降低gp5在dA350 / dT25上的聚合酶活性。在该Cys-313或Cys-275被丝氨酸取代的引物模板gp5 / trx上,分别具有野生型gp5 / trx所观察到的聚合酶活性的50%和90%。以单链M13 DNA为模板,gp5-C275S / trx保留了野生型gp5 / trx聚合酶活性的60%。相反,gp5-C313S / trx仅具有野生型gp5 / trx对M13 DNA的聚合酶活性的十分之一。野生型gp5 / trx和gp5-C275S / trx都催化M13 DNA整个互补链的合成,而gp5-C313S / trx则难以通过二级结构位点合成DNA。 gp5-C313S无法通过表观结合亲和力以及在羟基磷灰石-磷酸盐色谱过程中与硫氧还蛋白缺乏物理相互作用而与trx形成功能复合物。与野生型gp5的紧凑球形结构相比,小角度x射线散射揭示了gp5-C313S的细长结构。

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