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Biomimetic catalytic transformation of toxic α-oxoaldehydes to high-value chiral α-hydroxythioesters using artificial glyoxalase I

机译:使用人工乙二醛酶I将有毒的α-乙醛仿生催化转化为高价值的手性α-羟基硫酯

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摘要

Glyoxalase I plays a critical role in the enzymatic defence against glycation by catalysing the isomerization of hemithioacetal, formed spontaneously from cytotoxic α-oxoaldehydes and glutathione, to (S)-α-hydroxyacylglutathione derivatives. Upon the hydrolysis of the thioesters catalysed by glyoxalase II, inert (S)-α-hydroxy acids, that is, lactic acid, are then produced. Herein, we demonstrate highly enantioselective glyoxalase I mimic catalytic isomerization of in-situ-generated hemithioacetals, providing facile access to both enantiomers of α-hydroxy thioesters. Owing to the flexibility of thioesters, a family of optically pure α-hydroxyamides, which are highly important drug candidates in the pharmaceutical industry, were prepared without any coupling reagents. Similar to real enzymes, the enforced proximity of the catalyst and substrates by the chiral cage in situ formed by the incorporation of potassium salt can enhance the reactivity and efficiently transfer the stereochemical information.
机译:乙二醛酶I通过催化由细胞毒性α-氧醛和谷胱甘肽自发形成的半硫缩醛异构化为(S)-α-羟酰基谷胱甘肽衍生物,在抗糖基化的酶促防御中起关键作用。通过乙二醛酶II催化的硫代酯的水解,然后产生惰性(S)-α-羟基酸,即乳酸。在本文中,我们证明了高度对映选择性的乙二醛酶I模拟原位生成的半硫缩醛的催化异构化,提供了对α-羟基硫酯的两个对映异构体的便捷通道。由于硫酯的柔韧性,制备了光学纯的α-羟基酰胺族,它们在制药工业中是非常重要的候选药物,无需任何偶联剂即可制备。与真实的酶类似,通过掺入钾盐而形成的手性笼强制地接近催化剂和底物,可以增强反应性并有效地传递立体化学信息。

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