聚酮
化学
聚酮合酶
酶
立体化学
合理设计
活动站点
还原酶
生物化学
蛋白质工程
酰基载体蛋白
组合化学
基质(水族馆)
化学生物学
生物合成
计算生物学
结合位点
合成生物学
药物发现
基因簇
分子模型
模块化设计
代谢工程
对接(动物)
ATP合酶
作者
Yan Gao,Kai Jiang,Yuhan Dai,Huixue Chen,Qingru Wang,Dingfeng Li,Xiaoli Yan,Guangzheng Wei,Zhi Xiu Lin,Haifeng Chen,Zixin Deng,Xudong Qu
摘要
Polyketides are a structurally diverse class of natural products with immense therapeutic potential. However, the biosynthetic output of discrete polyketide synthases (PKSs) has been constrained by a fundamental functional limitation: unlike modular Type I systems, discrete PKS systems typically lack integrated enoyl reductase (ER) activity. This constraint restricts their chemical repertoire primarily to unsaturated polyenes or aromatic scaffolds. Here, we characterize PbrC16, a FabV-family ER from a manumycin-type biosynthetic gene cluster (BGC) in Peterkaempfera bronchialis. This enzyme represents the first experimentally validated ER capable of functioning within discrete PKS architectures. In vitro biochemical reconstitution demonstrates that PbrC16 along with its homologue ScFabV catalyze iterative enoyl reductions in both β-ketoacyl-acyl carrier protein synthase III (KAS III)-dependent and highly reducing (HR) Type II PKS contexts, enabling the complete saturation of long-chain polyketide intermediates. Structural and computational analyses reveal the molecular basis for its exceptional substrate promiscuity and versatile acyl carrier protein (ACP) recognition. These findings resolve a long-standing "reductive gap" in discrete PKS biology and provide a "plug-and-play" module for the rational engineering of saturated polyketide scaffolds.
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