首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Structural Basis for the Formation of Acylalkylpyrones from Two β-Ketoacyl Units by the Fungal Type III Polyketide Synthase CsyB
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Structural Basis for the Formation of Acylalkylpyrones from Two β-Ketoacyl Units by the Fungal Type III Polyketide Synthase CsyB

机译:真菌III型聚酮化合物合酶CsyB由两个β-酮酰基单元形成酰基烷基吡喃酮的结构基础

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摘要

The acylalkylpyrone synthase CsyB from Aspergillus oryzae catalyzes the one-pot formation of the 3-acyl-4-hydroxy-6-alkyl-α-pyrone scaffold from acetoacetyl-CoA, fatty acyl-CoA, and malonyl-CoA. This is the first type III polyketide synthase that performs not only the polyketide chain elongation but also the condensation of two β-ketoacyl units. The crystal structures of wild-type CsyB and its I375F and I375W mutants were solved at 1.7-, 2.3-, and 2.0-Å resolutions, respectively. The crystal structures revealed a unique active site architecture featuring a hitherto unidentified novel pocket for accommodation of the acetoacetyl-CoA starter in addition to the conventional elongation/cyclization pocket with the Cys-His-Asn catalytic triad and the long hydrophobic tunnel for binding the fatty acyl chain. The structures also indicated the presence of a putative nucleophilic water molecule activated by the hydrogen bond networks with His-377 and Cys-155 at the active site center. Furthermore, an in vitro enzyme reaction confirmed that the 18O atom of the H218O molecule is enzymatically incorporated into the final product. These observations suggested that the enzyme reaction is initiated by the loading of acetoacetyl-CoA onto Cys-155, and subsequent thioester bond cleavage by the nucleophilic water generates the β-keto acid intermediate, which is placed within the novel pocket. The second β-ketoacyl unit is then produced by polyketide chain elongation of fatty acyl-CoA with one molecule of malonyl-CoA, and the condensation with the β-keto acid generates the final products. Indeed, steric modulation of the novel pocket by the structure-based I375F and I375W mutations resulted in altered specificities for the chain lengths of the substrates.
机译:米曲霉的酰基烷基吡喃酮合酶CsyB催化由乙酰乙酰基-CoA,脂肪酰基-CoA和丙二酰-CoA的一锅形成3-酰基-4-羟基-6-烷基-α-吡喃酮支架。这是第一种III型聚酮化合物合酶,不仅可以进行聚酮化合物链的延伸,而且还可以进行两个β-酮酰基单元的缩合。野生型CsyB及其I375F和I375W突变体的晶体结构分别以1.7-,2.3-和2.0-Å分辨率解析。晶体结构揭示了一个独特的活性位点结构,该结构具有迄今无法识别的新颖口袋,可容纳乙酰乙酰辅酶A起始物,此外还有带有Cys-His-Asn催化三联体的常规延伸/环化口袋和用于结合脂肪的长疏水通道酰基链。该结构还表明存在一个假定的亲核水分子,该分子被氢键网络激活,其活性位点中心处有His-377和Cys-155。此外,体外酶反应证实H2 18 O分子的 18 O原子已酶促地掺入到最终产物中。这些观察结果表明,酶反应是通过将乙酰乙酰辅酶A负载到Cys-155上引发的,随后亲核水对硫酯键的裂解产生了β-酮酸中间体,该中间体被放置在新的口袋中。然后,通过将脂肪酰基-CoA与一分子丙二酰-CoA进行聚酮化合物链延伸来生成第二个β-酮酰基单元,然后与β-酮酸缩合生成最终产物。确实,基于结构的I375F和I375W突变对新型口袋的空间调节导致底物链长的特异性改变。

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