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模块化聚酮生物合成中对接的结构基础。

The structural basis for docking in modular polyketide biosynthesis.

作者信息

Weissman Kira J

机构信息

Department of Biochemistry, University of Cambridge, 80 Tennis Court Road, Cambridge CB2 1GA, UK.

出版信息

Chembiochem. 2006 Mar;7(3):485-94. doi: 10.1002/cbic.200500435.

Abstract

Polyketide natural products such as erythromycin and rapamycin are assembled on polyketide synthases (PKSs), which consist of modular sets of catalytic activities distributed across multiple protein subunits. Correct protein-protein interactions among the PKS subunits which are critical to the fidelity of biosynthesis are mediated in part by "docking domains" at the termini of the proteins. The NMR solution structure of a representative docking domain complex from the erythromycin PKS (DEBS) was recently solved, and on this basis it has been proposed that PKS docking is mediated by the formation of an intermolecular four-alpha-helix bundle. Herein, we report the genetic engineering of such a docking domain complex by replacement of specific helical segments and analysis of triketide synthesis by mutant PKSs in vivo. The results of these helix swaps are fully consistent with the model and highlight residues in the docking domains that may be targeted to alter the efficiency or specificity of subunit-subunit docking in hybrid PKSs.

摘要

聚酮类天然产物,如红霉素和雷帕霉素,是在聚酮合酶(PKSs)上组装而成的,聚酮合酶由分布在多个蛋白质亚基上的模块化催化活性组成。PKS亚基之间正确的蛋白质-蛋白质相互作用对生物合成的保真度至关重要,部分是由蛋白质末端的“对接结构域”介导的。最近解析了来自红霉素PKS(DEBS)的代表性对接结构域复合物的核磁共振溶液结构,并在此基础上提出PKS对接是由分子间四α-螺旋束的形成介导的。在此,我们报告了通过替换特定螺旋片段对这种对接结构域复合物进行基因工程改造,并分析了体内突变PKSs的三酮合成。这些螺旋交换的结果与该模型完全一致,并突出了对接结构域中可能作为靶点来改变杂合PKSs中亚基-亚基对接效率或特异性的残基。

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