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一种芳基双加氧酶对各种双芳基化合物具有显著的双重双加氧能力,前提是它们是碳环的。

An aryl dioxygenase shows remarkable double dioxygenation capacity for diverse bis-aryl compounds, provided they are carbocyclic.

机构信息

Department of Chemical Biology, Helmholtz Centre for Infection Research, Inhoffenstraße 7, D-38124, Braunschweig, Germany.

Laboratorio de Microbiología Molecular y Biotecnología Ambiental, Departamento de Química & Center for Nanotechnology and Systems Biology & Centro de Biotecnología, Universidad Técnica Federico Santa María, Valparaíso, Chile.

出版信息

Appl Microbiol Biotechnol. 2016 Sep;100(18):8053-61. doi: 10.1007/s00253-016-7570-0. Epub 2016 May 5.

Abstract

The bacterial dioxygenation of mono- or polycyclic aromatic compounds is an intensely studied field. However, only in a few cases has the repeated dioxygenation of a substrate possessing more than a single aromatic ring been described. We previously characterized the aryl-hydroxylating dioxygenase BphA-B4h, an artificial hybrid of the dioxygenases of the biphenyl degraders Burkholderia xenovorans LB400 and Pseudomonas sp. strain B4-Magdeburg, which contains the active site of the latter enzyme, as an exceptionally powerful biocatalyst. We now show that this dioxygenase possesses a remarkable capacity for the double dioxygenation of various bicyclic aromatic compounds, provided that they are carbocyclic. Two groups of biphenyl analogues were examined: series A compounds containing one heterocyclic aromatic ring and series B compounds containing two homocyclic aromatic rings. Whereas all of the seven partially heterocyclic biphenyl analogues were solely dioxygenated in the homocyclic ring, four of the six carbocyclic bis-aryls were converted into ortho,meta-hydroxylated bis-dihydrodiols. Potential reasons for failure of heterocyclic dioxygenations are discussed. The obtained bis-dihydrodiols may, as we also show here, be enzymatically re-aromatized to yield the corresponding tetraphenols. This opens a way to a range of new polyphenolic products, a class of compounds known to exert multiple biological activities. Several of the obtained compounds are novel molecules.

摘要

单环或多环芳烃的细菌双加氧作用是一个受到深入研究的领域。然而,只有在少数情况下,才描述过具有不止一个芳环的底物的重复双加氧作用。我们之前曾对芳基羟化双加氧酶 BphA-B4h 进行了表征,该酶是联苯降解菌 Burkholderia xenovorans LB400 和 Pseudomonas sp. strain B4-Magdeburg 的双加氧酶的人工杂合体,其中包含后者酶的活性位点,是一种非常强大的生物催化剂。我们现在表明,该双加氧酶具有对各种双环芳烃化合物进行双重双加氧作用的非凡能力,只要它们是碳环的。我们研究了两组联苯类似物:含一个杂芳环的 A 系列化合物和含两个同芳环的 B 系列化合物。尽管七个部分杂环联苯类似物仅在同芳环中被双加氧,但是六个碳环联二芳基中的四个被转化为邻位、间位羟化的双二氢二醇。讨论了杂环双加氧失败的潜在原因。我们还在这里展示,获得的双二氢二醇可以通过酶促再芳构化为相应的四酚。这为一系列新的多酚类产物开辟了道路,这类化合物已知具有多种生物学活性。获得的几种化合物是新的分子。

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