酮还原酶介导的 1,1-二取代环丁烷-3-醇立体异构合成

IF 3.1 3区 化学 Q2 CHEMISTRY, APPLIED Organic Process Research & Development Pub Date : 2024-05-21 DOI:10.1021/acs.oprd.4c00126
Hardwin O’Dowd*,  and , Olivia M. Morales, 
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引用次数: 0

摘要

使用酮还原酶(KRED)证明了对α-取代的 3-羟基环丁烷-1-羧酸酯的顺式和反式异构体的选择性获取。从一个商用面板中发现了两种立体互补的 KRED,当酯基为对甲氧基苄基时,它们对小的α-取代基具有高度选择性。探究这两种酶的底物范围发现,当 α-取代基的立体体积增大时,两者的选择性都迅速下降。对于具有较大 α-取代基的甲酯底物,发现了一对不同的 KREDs,它们对小范围底物的顺式和反式异构体都具有极佳的选择性。环丁醇产品可作为氨基酸等其他有用合成构件的前体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Ketoreductase-Mediated Stereodivergent Synthesis of 1,1-Disubstituted Cyclobutan-3-ols

Selective access to both cis- and trans-isomers of α-substituted 3-hydroxycyclobutane-1-carboxylic esters has been demonstrated using ketoreductase (KRED) enzymes. Two stereocomplementary KREDs were identified from a commercial panel that are highly selective for small α-substituents when the ester group was para-methoxybenzyl. Probing the substrate scope of these two enzymes revealed that the selectivity declined rapidly with both when increasing the steric bulk of the α-substituent. For methyl ester substrates with larger α-substituents, a different pair of KREDs was identified with excellent selectivity for both the cis- and trans-isomers for a small range of substrates. The cyclobutanol products serve as precursors to other synthetically useful building blocks such as amino acids.

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来源期刊
CiteScore
6.90
自引率
14.70%
发文量
251
审稿时长
2 months
期刊介绍: The journal Organic Process Research & Development serves as a communication tool between industrial chemists and chemists working in universities and research institutes. As such, it reports original work from the broad field of industrial process chemistry but also presents academic results that are relevant, or potentially relevant, to industrial applications. Process chemistry is the science that enables the safe, environmentally benign and ultimately economical manufacturing of organic compounds that are required in larger amounts to help address the needs of society. Consequently, the Journal encompasses every aspect of organic chemistry, including all aspects of catalysis, synthetic methodology development and synthetic strategy exploration, but also includes aspects from analytical and solid-state chemistry and chemical engineering, such as work-up tools,process safety, or flow-chemistry. The goal of development and optimization of chemical reactions and processes is their transfer to a larger scale; original work describing such studies and the actual implementation on scale is highly relevant to the journal. However, studies on new developments from either industry, research institutes or academia that have not yet been demonstrated on scale, but where an industrial utility can be expected and where the study has addressed important prerequisites for a scale-up and has given confidence into the reliability and practicality of the chemistry, also serve the mission of OPR&D as a communication tool between the different contributors to the field.
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