Hagen Andrew, Poust Sean, Rond Tristan de, Fortman Jeffrey L, Katz Leonard, Petzold Christopher J, Keasling Jay D
Physical Bioscience Division, Lawrence Berkeley National Laboratory , Berkeley, California 94270, United States.
ACS Synth Biol. 2016 Jan 15;5(1):21-7. doi: 10.1021/acssynbio.5b00153. Epub 2015 Nov 10.
Polyketides have enormous structural diversity, yet polyketide synthases (PKSs) have thus far been engineered to produce only drug candidates or derivatives thereof. Thousands of other molecules, including commodity and specialty chemicals, could be synthesized using PKSs if composing hybrid PKSs from well-characterized parts derived from natural PKSs was more efficient. Here, using modern mass spectrometry techniques as an essential part of the design-build-test cycle, we engineered a chimeric PKS to enable production one of the most widely used commodity chemicals, adipic acid. To accomplish this, we introduced heterologous reductive domains from various PKS clusters into the borrelidin PKS' first extension module, which we previously showed produces a 3-hydroxy-adipoyl intermediate when coincubated with the loading module and a succinyl-CoA starter unit. Acyl-ACP intermediate analysis revealed an unexpected bottleneck at the dehydration step, which was overcome by introduction of a carboxyacyl-processing dehydratase domain. Appending a thioesterase to the hybrid PKS enabled the production of free adipic acid. Using acyl-intermediate based techniques to "debug" PKSs as described here, it should one day be possible to engineer chimeric PKSs to produce a variety of existing commodity and specialty chemicals, as well as thousands of chemicals that are difficult to produce from petroleum feedstocks using traditional synthetic chemistry.
聚酮化合物具有巨大的结构多样性,但迄今为止,聚酮化合物合酶(PKSs)仅被设计用于生产药物候选物或其衍生物。如果从天然PKSs中特征明确的部分构建杂合PKSs的效率更高,那么包括大宗商品和特种化学品在内的数千种其他分子都可以使用PKSs进行合成。在这里,我们将现代质谱技术作为设计-构建-测试循环的重要组成部分,设计了一种嵌合PKS,以实现生产一种应用最广泛的大宗商品化学品——己二酸。为了实现这一目标,我们将来自各种PKS簇的异源还原结构域引入到硼替佐米PKS的第一个延伸模块中,我们之前发现,当该延伸模块与加载模块和琥珀酰辅酶A起始单元共同孵育时,会产生3-羟基己二酰中间体。酰基-ACP中间体分析揭示了脱水步骤中一个意想不到的瓶颈,通过引入一个羧基酰基加工脱水酶结构域克服了这一问题。在杂合PKS上附加一个硫酯酶能够生产游离己二酸。使用本文所述的基于酰基中间体的技术“调试”PKSs,也许有一天能够设计出嵌合PKSs,以生产各种现有的大宗商品和特种化学品,以及数千种难以用传统合成化学从石油原料生产的化学品。