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Structural Mechanism of Regioselectivity in an Unusual Bacterial Acyl-CoA Dehydrogenase

机译:异常细菌酰基辅酶A脱氢酶区域选择性的结构机理

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摘要

Terminal alkenes are easily derivatized, making them desirable functional group targets for polyketide synthase (PKS) engineering. However, they are rarely encountered in natural PKS systems. One mechanism for terminal alkene formation in PKSs is through the activity of an acyl-CoA dehydrogenase (ACAD). Herein, we use biochemical and structural analysis to understand the mechanism of terminal alkene formation catalyzed by an γ,δ-ACAD from the biosynthesis of the polyketide natural product FK506, TcsD. While TcsD is homologous to canonical α,β-ACADs, it acts regioselectively at the γ,δ-position and only on α,β-unsaturated substrates. Furthermore, this regioselectivity is controlled by a combination of bulky residues in the active site and a lateral shift in the positioning of the FAD cofactor within the enzyme. Substrate modeling suggests that TcsD utilizes a novel set of hydrogen bond donors for substrate activation and positioning, preventing dehydrogenation at the α,β position of substrates. From the structural and biochemical characterization of TcsD, key residues that contribute to regioselectivity and are unique to the protein family were determined and used to identify other putative γ,δ5-ACADs that belong to diverse natural product biosynthetic gene clusters. These predictions are supported by the demonstration that a phylogenetically distant homologue of TcsD also regioselectively oxidizes α,β-unsaturated substrates. This work exemplifies a powerful approach to understand unique enzymatic reactions and will facilitate future enzyme discovery, inform enzyme engineering, and aid natural product characterization efforts.
机译:末端烯烃易于衍生,使其成为聚酮化合物合酶(PKS)工程的理想官能团目标。但是,它们在自然PKS系统中很少遇到。 PKS中末端烯烃形成的一种机制是通过酰基辅酶A脱氢酶(ACAD)的活性。在这里,我们使用生化和结构分析来了解聚酮化合物天然产物FK506,TcsD的γ,δ-ACAD催化末端烯烃形成的机理。 TcsD与经典的α,β-ACAD同源,但它在γ,δ位置仅对α,β-不饱和底物具有区域选择性作用。此外,该区域选择性是由活性位点中的大体积残基和酶中FAD辅因子的定位发生侧向位移共同控制的。底物建模表明,TcsD利用一套新颖的氢键供体进行底物活化和定位,从而防止了底物在α,β位置上的脱氢。根据TcsD的结构和生化特征,确定了有助于区域选择性并且是蛋白质家族独有的关键残基,并用于鉴定其他推定的γ,δ5-ACAD,它们属于不同的天然产物生物合成基因簇。这些预言得到了TcsD的系统发生远缘同源物还可以区域选择性氧化α,β-不饱和底物的证明。这项工作为了解独特的酶促反应提供了一种有力的方法,并将促进未来酶的发现,为酶工程提供信息并帮助天然产物表征工作。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第2期|835-846|共12页
  • 作者单位

    Department of Chemistry University of California Berkeley California 94720 United States Joint BioEnergy Institute Emeryville California 94608 United States Biological Systems and Engineering Division Lawrence Berkeley National Laboratory Berkeley California 94720 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States Molecular Biophysics and Integrated Bioimaging Lawrence Berkeley National Laboratory Berkeley California 94720 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States Biological Systems and Engineering Division Lawrence Berkeley National Laboratory Berkeley California 94720 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States Biological Systems and Engineering Division Lawrence Berkeley National Laboratory Berkeley California 94720 United States Department of Plant and Microbial Biology University of California—Berkeley Berkeley California 94720 United States;

    Department of Chemistry University of California Berkeley California 94720 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States Biological Systems and Engineering Division Lawrence Berkeley National Laboratory Berkeley California 94720 United States Department of Energy Agile BioFoundry Emeryville California 94608 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States QB3 Institute University of California—Berkeley Emeryville California 94608 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States Biological Systems and Engineering Division Lawrence Berkeley National Laboratory Berkeley California 94720 United States Molecular Biophysics and Integrated Bioimaging Lawrence Berkeley National Laboratory Berkeley California 94720 United States;

    Joint BioEnergy Institute Emeryville California 94608 United States Biological Systems and Engineering Division Lawrence Berkeley National Laboratory Berkeley California 94720 United States QB3 Institute University of California—Berkeley Emeryville California 94608 United States Department of Chemical & Biomolecular Engineering Department of Bioengineering University of California—Berkeley Berkeley California 94720 United States Novo Nordisk Foundation Center for Biosustainability Technical University Denmark DK2970 Horsholm Denmark Center for Synthetic Biochemistry Shenzhen Institutes for Advanced Technologies Shenzhen 518055 P. R. China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 05:17:03

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