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Crystal structure of the macrocycle-forming thioesterase domain of the erythromycin polyketide synthase: Versatility from a unique substrate channel

机译:形成大环的硫酯酶结构域的晶体结构 红霉素聚酮合酶的合成:来自 独特的底物通道

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摘要

As the first structural elucidation of a modular polyketide synthase (PKS) domain, the crystal structure of the macrocycle-forming thioesterase (TE) domain from the 6-deoxyerythronolide B synthase (DEBS) was solved by a combination of multiple isomorphous replacement and multiwavelength anomalous dispersion and refined to an R factor of 24.1% to 2.8-Å resolution. Its overall tertiary architecture belongs to the α/β-hydrolase family, with two unusual features unprecedented in this family: a hydrophobic leucine-rich dimer interface and a substrate channel that passes through the entire protein. The active site triad, comprised of Asp-169, His-259, and Ser-142, is located in the middle of the substrate channel, suggesting the passage of the substrate through the protein. Modeling indicates that the active site can accommodate and orient the 6-deoxyerythronolide B precursor uniquely, while at the same time shielding the active site from external water and catalyzing cyclization by macrolactone formation. The geometry and organization of functional groups explain the observed substrate specificity of this TE and offer strategies for engineering macrocycle biosynthesis. Docking of a homology model of the upstream acyl carrier protein (ACP6) against the TE suggests that the 2-fold axis of the TE dimer may also be the axis of symmetry that determines the arrangement of domains in the entire DEBS. Sequence conservation suggests that all TEs from modular polyketide synthases have a similar fold, dimer 2-fold axis, and substrate channel geometry.
机译:作为模块化聚酮化合物合酶(PKS)域的第一个结构阐明,通过多个同构置换和多波长异常相结合,解决了由6-脱氧赤藓醇B合酶(DEBS)形成大环的硫酯酶(TE)域的晶体结构。分散并精制到24.1%的R因子至2.8-Å分辨率。它的整体三级结构属于α/β-水解酶家族,具有该家族前所未有的两个不寻常的特征:疏水的富含亮氨酸的二聚体界面和穿过整个蛋白质的底物通道。由Asp-169,His-259和Ser-142组成的活性位点三联体位于底物通道的中间,表明底物可通过蛋白质。建模表明,活性位点可以唯一地容纳6-脱氧赤藓醇B前体并使其定向,同时可以使活性位点免受外界水的影响,并通过大内酯的形成催化环化。官能团的几何形状和组织解释了该TE的底物特异性,并为工程大环生物合成提供了策略。上游酰基载体蛋白(ACP6)的同源性模型与TE的对接表明,TE二聚体的2倍轴也可能是确定域在整个DEBS中排列的对称轴。序列保守性表明,来自模块化聚酮化合物合酶的所有TE具有相似的折叠,二聚体2折叠轴和底物通道几何形状。

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