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酮戊二酸依赖性双加氧酶实现远程 C-H 羟化反应,促进曼沙菌素 C 和脯氨酸类似物的高效酶法化学合成。

Remote C-H Hydroxylation by an α-Ketoglutarate-Dependent Dioxygenase Enables Efficient Chemoenzymatic Synthesis of Manzacidin C and Proline Analogs.

机构信息

Department of Chemistry, The Scripps Research Institute , 130 Scripps Way, Jupiter, Florida 33458, United States.

出版信息

J Am Chem Soc. 2018 Jan 24;140(3):1165-1169. doi: 10.1021/jacs.7b12918. Epub 2018 Jan 16.

Abstract

Selective C-H functionalization at distal positions remains a highly challenging problem in organic synthesis. Though Nature has evolved a myriad of enzymes capable of such feat, their synthetic utility has largely been overlooked. Here, we functionally characterize an α-ketoglutarate-dependent dioxygenase (Fe/αKG) that selectively hydroxylates the δ position of various aliphatic amino acids. Kinetic analysis and substrate profiling of the enzyme show superior catalytic efficiency and substrate promiscuity relative to other Fe/αKGs that catalyze similar reactions. We demonstrate the practical utility of this transformation in the concise syntheses of a rare alkaloid, manzacidin C, and densely substituted amino acid derivatives with remarkable step efficiency. This work provides a blueprint for future applications of Fe/αKG hydroxylation in complex molecule synthesis and the development of powerful synthetic paradigms centered on enzymatic C-H functionalization logic.

摘要

选择性 C-H 功能化在远端位置仍然是有机合成中的一个极具挑战性的问题。尽管自然界已经进化出了无数能够实现这一壮举的酶,但它们的合成实用性在很大程度上被忽视了。在这里,我们对一种依赖α-酮戊二酸的双加氧酶(Fe/αKG)进行了功能表征,该酶能够选择性地羟基化各种脂肪族氨基酸的δ 位。对该酶的动力学分析和底物谱分析表明,与催化类似反应的其他 Fe/αKG 相比,该酶具有更高的催化效率和底物的混杂性。我们在稀有生物碱曼扎西丁 C 和具有显著步骤效率的密集取代氨基酸衍生物的简洁合成中证明了这种转化的实际应用。这项工作为未来在复杂分子合成中应用 Fe/αKG 羟化以及基于酶 C-H 功能化逻辑的强大合成范例的发展提供了蓝图。

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