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Arylmalonate Decarboxylase-Catalyzed Asymmetric Synthesis of Both Enantiomers of Optically Pure Flurbiprofen

机译:芳基脱羧酶催化的光学纯Flbiprofen的对映体的不对称合成

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摘要

The bacterial decarboxylase (AMDase) catalyzes the enantioselective decarboxylation of prochiral arylmalonates with high enantioselectivity. Although this reaction would provide a highly sustainable synthesis of active pharmaceutical compounds such as flurbiprofen or naproxen, competing spontaneous decarboxylation has so far prevented the catalytic application of AMDase. Here, we report on reaction engineering and an alternate protection group strategy for the synthesis of these compounds that successfully suppresses the side reaction and provides pure arylmalonic acids for subsequent enzymatic conversion. Protein engineering increased the activity of the synthesis of the (S)- and (R)-enantiomers of flurbiprofen. These results demonstrated the importance of synergistic effects in the optimization of this decarboxylase. The asymmetric synthesis of both enantiomers in high optical purity (>99%) and yield (>90%) can be easily integrated into existing industrial syntheses of flurbiprofen, thus providing a sustainable method for the production of this important pharmaceutical ingredient.
机译:细菌脱羧酶(AmDase)催化具有高对映选择性的促胰芳基芳基甘油酸酯的对映选择性脱羧。虽然该反应将提供高度可持续合成的活性药物化合物,例如Flbiprofen或萘普伦,但竞争的自发脱羧已经迄今为止,氨化酶的催化施用施用。在此,我们报告了用于合成这些化合物的反应工程和交替保护组策略,该化合物成功地抑制副反应,得到纯芳基醛酸,用于随后的酶促转化。蛋白质工程增加了氟菊酯的合成的活性 - 和(R)的氟氯芬的那种体。这些结果表明了协同作用在优化该脱羧酶的优化中的重要性。高光学纯度(> 99%)和产率(> 90%)的两种对映体的不对称合成可以容易地集成到Flbiprofen的现有工业合成中,从而为生产这种重要的药物成分提供了可持续的方法。

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