Kim Seohyoung, Clomburg James M, Gonzalez Ramon
Department of Chemical and Biomolecular Engineering, Rice University, 6100 Main Street, MS-362, Houston, TX, 77005, USA.
J Ind Microbiol Biotechnol. 2015 Mar;42(3):465-75. doi: 10.1007/s10295-015-1589-6. Epub 2015 Feb 3.
The recently engineered reversal of the β-oxidation cycle has been proposed as a potential platform for the efficient synthesis of longer chain (C ≥ 4) fuels and chemicals. Here, we demonstrate the utility of this platform for the synthesis of medium-chain length (C6-C10) products through the manipulation of key components of the pathway. Deletion of endogenous thioesterases provided a clean background in which the expression of various thiolase and termination components, along with required core enzymes, resulted in the ability to alter the chain length distribution and functionality of target products. This approach enabled the synthesis of medium-chain length carboxylic acids and primary alcohols from glycerol, a low-value feedstock. The use of BktB as the thiolase component with thioesterase TesA' as the termination enzyme enabled the synthesis of about 1.3 g/L C6-C10 saturated carboxylic acids. Tailoring of product formation to primary alcohol synthesis was achieved with the use of various acyl-CoA reductases. The combination of AtoB and FadA as the thiolase components with the alcohol-forming acyl-CoA reductase Maqu2507 from M. aquaeolei resulted in the synthesis of nearly 0.3 g/L C6-C10 alcohols. These results further demonstrate the versatile nature of a β-oxidation reversal, and highlight several key aspects and control points that can be further manipulated to fine-tune the synthesis of various fuels and chemicals.
最近设计的β-氧化循环逆转已被提议作为高效合成较长链(C≥4)燃料和化学品的潜在平台。在此,我们通过操纵该途径的关键组分,证明了该平台用于合成中链长度(C6-C10)产物的效用。内源性硫酯酶的缺失提供了一个纯净的背景,在其中各种硫解酶和终止组分以及所需的核心酶的表达,使得能够改变目标产物的链长分布和功能。这种方法能够从甘油(一种低价值原料)合成中链长度的羧酸和伯醇。使用BktB作为硫解酶组分并以硫酯酶TesA'作为终止酶,能够合成约1.3 g/L的C6-C10饱和羧酸。通过使用各种酰基辅酶A还原酶实现了产物形成向伯醇合成的定制。将AtoB和FadA作为硫解酶组分与来自水生栖热菌的形成醇的酰基辅酶A还原酶Maqu2507相结合,能够合成近0.3 g/L的C6-C10醇。这些结果进一步证明了β-氧化逆转的多功能性质,并突出了几个关键方面和控制点,可对其进行进一步操纵以微调各种燃料和化学品的合成。