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金属螯合α-氨基酸的化学酶级联合成

Chemoenzymatic Cascade Synthesis of Metal-Chelating -Amino Acids.

作者信息

Young Sophie H, Andon James S, Lim Jooyeon, Franke Mareena C, Weix Daniel J, Wang Tina, Buller Andrew R

机构信息

Department of Chemistry, University of Wisconsin-Madison, 1101 University, Ave, Madison, Wisconsin, USA.

Department of Biochemistry, University of Wisconsin-Madison, 443 Babcock, Dr, Madison, Wisconsin, USA.

出版信息

ChemCatChem. 2025 Mar 6;17(5). doi: 10.1002/cctc.202401958. Epub 2024 Dec 9.

Abstract

Metal-chelating noncanonical amino acids (ncAAs) are uniquely functional building blocks for proteins, peptide catalysts, and small molecule sensors. However, catalytic asymmetric approaches to synthesizing these molecules are hindered by their functional group variability and intrinsic propensity to ligate metals. In particular, bipyridyl-L-alanine (BpyAla) is a highly sought ncAA, but its complex, inefficient syntheses have limited utility. Here, we develop a chemoenzymatic approach to efficiently construct BpyAla. Three enzymes that can be produced in high titer together react to convert Gly and an aldehyde into the corresponding -hydroxy ncAA, which is subsequently deoxygenated. We explore approaches to synthesizing biaryl aldehydes and show how the three-enzymatic cascade can access a range of -amino acids with bulky side chains, including a variety of metal-chelating amino acids. We show that newly accessible BpyAla analogues are compatible with existing amber suppression technology, which will enable future merging of traditional synthetic and biosynthetic approaches to tuning metal reactivity.

摘要

金属螯合非标准氨基酸(ncAAs)是蛋白质、肽催化剂和小分子传感器独特的功能性构建单元。然而,这些分子的催化不对称合成方法受到其官能团变异性和内在金属配位倾向的阻碍。特别是,联吡啶-L-丙氨酸(BpyAla)是一种备受追捧的ncAA,但其复杂、低效的合成方法限制了其应用。在此,我们开发了一种化学酶法来高效构建BpyAla。三种可以高产量生产的酶共同作用,将甘氨酸和一种醛转化为相应的α-羟基ncAA,随后该产物被脱氧。我们探索了合成联芳基醛的方法,并展示了三酶级联反应如何获得一系列带有庞大侧链的α-氨基酸,包括多种金属螯合氨基酸。我们表明,新获得的BpyAla类似物与现有的琥珀抑制技术兼容,这将使未来能够将传统合成和生物合成方法相结合来调节金属反应性。

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