Department of Chemical and Pharmaceutical Biology, Groningen Research Institute of Pharmacy, University of Groningen, 9713 AV, Groningen, The Netherlands.
Sci Rep. 2018 Jul 2;8(1):9961. doi: 10.1038/s41598-018-28177-4.
Amorpha-4,11-diene synthase (ADS) cyclizes the substrate farnesyl pyrophosphate to produce amorpha-4,11-diene as a major product. This is considered the first committed and rate-limiting step in the biosynthesis of the antimalarial artemisinin. Here, we utilize a reported 3D model of ADS to perform mutability landscape guided enzyme engineering. A mutant library of 258 variants along sixteen active site residues was created then screened for catalytic activity and product profile. This allowed for identification of the role of some of these residues in the mechanism. R262 constrains the released pyrophosphate group along with magnesium ions. The aromatic residues (W271, Y519 and F525) stabilize the intermediate carbocations while T296, G400, G439 and L515 help with the 1,6- and 1,10-ring closures. Finally, W271 is suggested to act as active site base along with T399, which ensures regioselective deprotonation. The mutability landscape also helped determine variants with improved catalytic activity. H448A showed ~4 fold increase in catalytic efficiency and the double mutation T399S/H448A improved k by 5 times. This variant can be used to enhance amorphadiene production and in turn artemisinin biosynthesis. Our findings provide the basis for the first step in improving industrial production of artemisinin and they open up possibilities for further engineering and understanding of ADS.
牻牛儿苗烯合酶(ADS)将底物法呢基焦磷酸环化生成牻牛儿苗烯-4,11-二烯作为主要产物。这被认为是青蒿素生物合成中第一个关键的限速步骤。在这里,我们利用报道的 ADS 三维模型进行可变性景观引导的酶工程改造。在十六个活性位点残基上创建了一个包含 258 个变体的突变文库,然后对其进行催化活性和产物谱筛选。这使得我们能够确定这些残基在机制中的一些作用。R262 与镁离子一起限制释放的焦磷酸基团。芳香族残基(W271、Y519 和 F525)稳定中间体碳正离子,而 T296、G400、G439 和 L515 有助于 1,6-和 1,10-环闭合。最后,W271 与 T399 一起被认为是活性位点碱基,可确保区域选择性去质子化。可变性景观还帮助确定了具有改进催化活性的变体。H448A 的催化效率提高了约 4 倍,而 T399S/H448A 双突变使 k 值提高了 5 倍。该变体可用于提高牻牛儿苗烯的产量,进而提高青蒿素的生物合成。我们的研究结果为提高青蒿素工业生产的第一步提供了基础,并为进一步的工程改造和 ADS 的理解开辟了可能性。