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一个具有翼状螺旋-转角-螺旋结构的转录因子的翅膀组织了双功能抑制剂/连接酶 BirA 的活性位点。

The wing of a winged helix-turn-helix transcription factor organizes the active site of BirA, a bifunctional repressor/ligase.

机构信息

From the Departments of Microbiology and.

出版信息

J Biol Chem. 2013 Dec 13;288(50):36029-39. doi: 10.1074/jbc.M113.525618. Epub 2013 Nov 4.

Abstract

The BirA biotin protein ligase of Escherichia coli belongs to the winged helix-turn-helix (wHTH) family of transcriptional regulators. The N-terminal BirA domain is required for both transcriptional regulation of biotin synthesis and biotin protein ligase activity. We addressed the structural and functional role of the wing of the wHTH motif in both BirA functions. A panel of N-terminal deletion mutant proteins including a discrete deletion of the wing motif were unable to bind DNA. However, all the N-terminal deletion mutants weakly complemented growth of a ΔbirA strain at low biotin concentrations, indicating compromised ligase activity. A wing domain chimera was constructed by replacing the BirA wing with the nearly isosteric wing of the E. coli OmpR transcription factor. Although this chimera BirA was defective in operator binding, it was much more efficient in complementation of a ΔbirA strain than was the wing-less protein. The enzymatic activities of the wing deletion and chimera proteins in the in vitro synthesis of biotinoyl-5'-AMP differed greatly. The wing deletion BirA accumulated an off pathway compound, ADP, whereas the chimera protein did not. Finally, we report that a single residue alteration in the wing bypasses the deleterious effects caused by mutations in the biotin-binding loop of the ligase active site. We believe that the role of the wing in the BirA enzymatic reaction is to orient the active site and thereby protect biotinoyl-5'-AMP from attack by solvent. This is the first evidence that the wing domain of a wHTH protein can play an important role in enzymatic activity.

摘要

大肠杆菌的 BirA 生物素蛋白连接酶属于转录调节因子的翼型螺旋-转角-螺旋(wHTH)家族。N 端 BirA 结构域对于生物素合成的转录调控和生物素蛋白连接酶活性都是必需的。我们研究了 wHTH 基序的翅膀在这两种 BirA 功能中的结构和功能作用。一组 N 端缺失突变蛋白,包括翅膀基序的离散缺失,无法结合 DNA。然而,所有的 N 端缺失突变体在低生物素浓度下都能微弱地补充ΔbirA 菌株的生长,表明连接酶活性受损。通过用大肠杆菌 OmpR 转录因子的几乎等构的翅膀替换 BirA 翅膀,构建了一个翅膀结构域嵌合体。尽管这个嵌合体 BirA 在操纵子结合上有缺陷,但它在补充ΔbirA 菌株方面比无翅蛋白更有效。在体外生物素酰-5'-AMP 的合成中,翅膀缺失和嵌合体蛋白的酶活性差异很大。翅膀缺失的 BirA 积累了一种非途径化合物 ADP,而嵌合体蛋白则没有。最后,我们报告说,翅膀中的一个单一残基改变可以绕过连接酶活性位点中生物素结合环突变引起的有害影响。我们认为,翅膀在 BirA 酶反应中的作用是定向活性位点,从而保护生物素酰-5'-AMP 免受溶剂的攻击。这是第一个证明 wHTH 蛋白的翅膀结构域可以在酶活性中发挥重要作用的证据。

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