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一种细菌III型聚酮合酶的晶体结构及活性聚酮中间体的酶促调控

Crystal structure of a bacterial type III polyketide synthase and enzymatic control of reactive polyketide intermediates.

作者信息

Austin Michael B, Izumikawa Miho, Bowman Marianne E, Udwary Daniel W, Ferrer Jean-Luc, Moore Bradley S, Noel Joseph P

机构信息

Structural Biology Laboratory, The Salk Institute for Biological Studies, La Jolla, California 92037, USA.

出版信息

J Biol Chem. 2004 Oct 22;279(43):45162-74. doi: 10.1074/jbc.M406567200. Epub 2004 Jul 20.

Abstract

In bacteria, a structurally simple type III polyketide synthase (PKS) known as 1,3,6,8-tetrahydroxynaphthlene synthase (THNS) catalyzes the iterative condensation of five CoA-linked malonyl units to form a pentaketide intermediate. THNS subsequently catalyzes dual intramolecular Claisen and aldol condensations of this linear intermediate to produce the fused ring tetrahydroxynaphthalene (THN) skeleton. The type III PKS-catalyzed polyketide extension mechanism, utilizing a conserved Cys-His-Asn catalytic triad in an internal active site cavity, is fairly well understood. However, the mechanistic basis for the unusual production of THN and dual cyclization of its malonyl-primed pentaketide is obscure. Here we present the first bacterial type III PKS crystal structure, that of Streptomyces coelicolor THNS, and identify by mutagenesis, structural modeling, and chemical analysis the unexpected catalytic participation of an additional THNS-conserved cysteine residue in facilitating malonyl-primed polyketide extension beyond the triketide stage. The resulting new mechanistic model, involving the use of additional cysteines to alter and steer polyketide reactivity, may generally apply to other PKS reaction mechanisms, including those catalyzed by iterative type I and II PKS enzymes. Our crystal structure also reveals an unanticipated novel cavity extending into the "floor" of the traditional active site cavity, providing the first plausible structural and mechanistic explanation for yet another unusual THNS catalytic activity: its previously inexplicable extra polyketide extension step when primed with a long acyl starter. This tunnel allows for selective expansion of available active site cavity volume by sequestration of aliphatic starter-derived polyketide tails, and further suggests another distinct protection mechanism involving maintenance of a linear polyketide conformation.

摘要

在细菌中,一种结构简单的III型聚酮合酶(PKS),即1,3,6,8 - 四羟基萘合酶(THNS),催化五个与辅酶A相连的丙二酰单元的迭代缩合反应,形成一个五酮中间体。随后,THNS催化该线性中间体进行分子内克莱森缩合和羟醛缩合反应,生成稠环四羟基萘(THN)骨架。III型PKS催化的聚酮链延伸机制,利用内部活性位点腔中保守的半胱氨酸 - 组氨酸 - 天冬酰胺催化三联体,已得到较好的理解。然而,THN的异常产生及其丙二酰引发的五酮的双重环化反应的机制基础仍不清楚。在此,我们展示了第一个细菌III型PKS晶体结构,即天蓝色链霉菌THNS的晶体结构,并通过诱变、结构建模和化学分析,确定了另一个THNS保守的半胱氨酸残基在促进丙二酰引发的聚酮链延伸超过三酮阶段时的意外催化作用。由此产生的新机制模型,涉及使用额外的半胱氨酸来改变和引导聚酮的反应性,可能普遍适用于其他PKS反应机制,包括由迭代型I和II型PKS酶催化的机制。我们的晶体结构还揭示了一个意外的新型腔,延伸到传统活性位点腔的“底部”,为另一种不寻常的THNS催化活性提供了第一个合理的结构和机制解释:当用长链酰基起始物引发时,其先前无法解释的额外聚酮链延伸步骤。这个通道允许通过隔离脂肪族起始物衍生的聚酮尾巴来选择性地扩大可用活性位点腔的体积,并进一步暗示了另一种独特的保护机制,涉及维持线性聚酮构象。

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