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硫氧还蛋白,作为一种延伸因子,可将噬菌体 T7 DNA 聚合酶的拇指结构域中暴露的半胱氨酸残基隔离起来。

Thioredoxin, the processivity factor, sequesters an exposed cysteine in the thumb domain of bacteriophage T7 DNA polymerase.

机构信息

Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts 02115, USA.

出版信息

J Biol Chem. 2012 Nov 16;287(47):39732-41. doi: 10.1074/jbc.M112.409235. Epub 2012 Sep 25.

DOI:10.1074/jbc.M112.409235
PMID:23012374
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3501039/
Abstract

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 dA(350)/dT(25). 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.

摘要

噬菌体 T7 的基因 5 蛋白(gp5)是一种非连续的 DNA 聚合酶。它通过与大肠杆菌硫氧还蛋白(trx)结合来实现连续性。gp5/trx 复合物紧密结合到引物-DNA 模板上,使每个结合事件都能聚合数百个核苷酸。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连接,导致聚合酶活性丧失。当 Cys-275 和 Cys-313 被替换为丝氨酸时,没有检测到二硫键连接。Cys-275 和 Cys-313 分别位于硫氧还蛋白结合域的环 A 和环 B 上。用丝氨酸替换任一半胱氨酸(gp5-C275S、gp5-C313S)都会极大地降低 gp5 在 dA(350)/dT(25)上的聚合酶活性。在这种以引物-模板为 gp5/trx 的情况下,Cys-313 或 Cys-275 被替换为丝氨酸的 gp5/trx 的聚合酶活性分别为野生型 gp5/trx 的 50%和 90%。用单链 M13 DNA 作为模板,gp5-C275S/trx 保留了野生型 gp5/trx 聚合酶活性的 60%。相比之下,gp5-C313S/trx 在 M13 DNA 上的聚合酶活性只有野生型 gp5/trx 的十分之一。野生型 gp5/trx 和 gp5-C275S/trx 都能催化 M13 DNA 整条互补链的合成,而 gp5-C313S/trx 在合成 DNA 时很难通过二级结构位点。gp5-C313S 与 trx 形成功能性复合物的能力很差,这可以从表观结合亲和力以及在羟磷灰石-磷酸盐层析过程中与硫氧还蛋白缺乏物理相互作用来衡量。小角度 X 射线散射显示,gp5-C313S 的构象比野生型 gp5 的紧凑和球形构象更细长。

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