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酶催化的手性前体的动力学拆分用于抗病毒前药。

Enzyme-Catalyzed Kinetic Resolution of Chiral Precursors to Antiviral Prodrugs.

机构信息

Department of Chemistry , Texas A&M University , College Station , Texas 77843 , United States.

出版信息

Biochemistry. 2019 Jul 23;58(29):3204-3211. doi: 10.1021/acs.biochem.9b00530. Epub 2019 Jul 10.

Abstract

Nucleoside analogues are among the most common medications given for the treatment of viral infections and cancers. The therapeutic effectiveness of nucleoside analogues can be dramatically improved by phosphorylation. The ProTide approach was developed using a phosphorylated nucleoside that is masked by esterification with an amino acid and phenol forming a chiral phosphorus center. The biological activity of the ProTides depends, in part, on the stereochemistry at phosphorus, and thus, it is imperative that efficient methods be developed for the chemical synthesis and isolation of diastereomerically pure ProTides. Chiral ProTides are often synthesized by direct displacement of a labile phenol (-nitrophenol or pentafluorophenol) from a chiral phosphoramidate precursor with the appropriate nucleoside analogue. The ability to produce these chiral products is dictated by the synthesis of the chiral phosphoramidate precursors. The enzyme phosphotriesterase (PTE) from is well-known for its high stereoselectivity and broad substrate profile. Screening PTE variants from enzyme evolution libraries enabled the identification of variants of PTE that can stereoselectively hydrolyze the chiral phosphoramidate precursors. The variant G60A-PTE exhibits a 165-fold preference for hydrolysis of the isomer, while the variant In1W-PTE has a 1400-fold preference for hydrolysis of the isomer. Using these mutants of PTE, the and isomers were isolated on a preparative scale with no detectable contamination of the opposite isomer. Combining the simplicity of the enzymatic resolution of the precursor with the latest synthetic strategy will facilitate the production of diastereometrically pure nucleotide phosphoramidate prodrugs.

摘要

核苷类似物是治疗病毒感染和癌症最常用的药物之一。核苷类似物的治疗效果可以通过磷酸化得到显著提高。ProTide 方法是使用经过酯化与氨基酸和苯酚形成手性磷中心的磷酸化核苷开发的。ProTides 的生物活性部分取决于磷的立体化学,因此,开发高效的化学合成和分离非对映异构体纯 ProTides 的方法至关重要。手性 ProTides 通常通过用适当的核苷类似物直接取代手性磷酰胺酯前体中的不稳定苯酚(-硝基苯酚或五氟苯酚)来合成。这些手性产物的合成能力取决于手性磷酰胺酯前体的合成。来自 的磷酸三酯酶 (PTE) 以其高立体选择性和广泛的底物谱而闻名。从酶进化文库中筛选 PTE 变体,使我们能够鉴定出能够立体选择性水解手性磷酰胺酯前体的 PTE 变体。变体 G60A-PTE 对 异构体的水解表现出 165 倍的偏好,而变体 In1W-PTE 对 异构体的水解则表现出 1400 倍的偏好。使用这些 PTE 突变体,以制备规模分离出 和 异构体,没有检测到对映异构体的污染。将前体的酶促拆分的简单性与最新的合成策略相结合,将促进非对映异构体纯核苷酸磷酰胺酯前药的生产。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d13b/7075540/f07309118961/bi9b00530_0006.jpg

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