不对称分子间环丙烷化反应的工程肌红蛋白催化剂。

Mary G Siriboe, Rudi Fasan
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引用次数: 1

摘要

生物催化在药物和其他高价值化合物的合成和制造中起着越来越重要的作用。为了扩大通过生物催化剂可获得的合成有用反应的范围,我们的团队已经探索了工程肌红蛋白用于“非生物”碳转移催化的潜力和应用。这些转化为构建新的碳-碳键和碳杂原子键提供了直接途径,包括合成环丙烷环,这是许多药物和生物活性天然产物的关键基序和药效团。在这篇获奖的文章中,我们综述了我们小组在不对称分子间环丙烷反应中肌红蛋白基催化剂的开发方面取得的进展。这些生物催化剂在这些反应中表现出的高立体选择性,加上它们广泛的底物范围、可扩展性和对高底物负载和有机共溶剂的鲁棒性,使这些系统特别适用于制备规模的化学合成和生物催化。将生物催化烃类转移反应的范围扩大到包括不同种类的烃类给体试剂,为不对称合成功能化环丙烷创造了新的机会。此外,肌红蛋白催化的立体选择性环丙烷化反应与酶产物的化学多样化相结合,为获得各种具有光学活性的环丙烷支架提供了有吸引力的化学酶策略,这些支架在药物发现、药物化学和天然产物合成方面具有很高的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineered Myoglobin Catalysts for Asymmetric Intermolecular Cyclopropanation Reactions.

Engineered Myoglobin Catalysts for Asymmetric Intermolecular Cyclopropanation Reactions.

Biocatalysis has covered an increasingly important role in the synthesis and manufacturing of pharmaceuticals and other high value compounds. In the interest of expanding the range of synthetically useful reactions accessible via biocatalysts, our group has explored the potential and application of engineered myoglobins for 'abiological' carbene transfer catalysis. These transformations provide a direct route for the construction of new carbon-carbon and carbon-heteroatom bonds, including the synthesis of cyclopropane rings, which are key motifs and pharmacophores in many drugs and bioactive natural products. In this award article, we survey the progress made by our group toward the development of myoglobin-based catalysts for asymmetric intermolecular cyclopropanation reactions. The high stereoselectivity exhibited by these biocatalysts in these reactions, combined with their broad substrate scope, scalability, and robustness to high substrate loading and organic co-solvents, contribute to make these systems particularly useful for chemical synthesis and biocatalysis at the preparative scale. Extension of the scope of biocatalytic carbene transfer reactions to include different classes of carbene donor reagents has created new opportunities for the asymmetric synthesis of functionalized cyclopropanes. Furthermore, the integration of myoglobin-catalyzed stereoselective cyclopropanations with chemical diversification of the enzymatic products has furnished attractive chemoenzymatic strategies to access a diverse range of optically active cyclopropane scaffolds of high value for drug discovery, medicinal chemistry, and the synthesis of natural products.

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