Beijing Key Laboratory of Bioprocess, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, 100029, People's Republic of China.
World J Microbiol Biotechnol. 2021 Jun 15;37(7):117. doi: 10.1007/s11274-021-03091-6.
3-Hydroxypropionic acid (3-HP) represents an economically important platform compound from which a panel of bulk chemicals can be derived. Compared with petroleum-dependent chemical synthesis, bioproduction of 3-HP has attracted more attention due to utilization of renewable biomass. This review outlines bacterial production of 3-HP, covering aspects of host strains (e.g., Escherichia coli and Klebsiella pneumoniae), metabolic pathways, key enzymes, and hurdles hindering high-level production. Inspired by the state-of-the-art advances in metabolic engineering and synthetic biology, we come up with protocols to overcome the hurdles constraining 3-HP production. The protocols range from rewiring of metabolic networks, alleviation of metabolite toxicity, to dynamic control of cell size and density. Especially, this review highlights the substantial contribution of microbial growth to 3-HP production, as we recognize the synchronization between cell growth and 3-HP formation. Accordingly, we summarize the following growth-promoting strategies: (i) optimization of fermentation conditions; (ii) construction of gene circuits to alleviate feedback inhibition; (iii) recruitment of RNA polymerases to overexpress key enzymes which in turn boost cell growth and 3-HP production. Lastly, we propose metabolic engineering approaches to simplify downstream separation and purification. Overall, this review aims to portray a picture of bacterial production of 3-HP.
3-羟基丙酸(3-HP)是一种具有重要经济价值的平台化合物,可衍生出一系列大宗化学品。与依赖石油的化学合成相比,利用可再生生物质进行生物生产 3-HP 引起了更多的关注。本文概述了细菌生产 3-HP 的方法,涵盖了宿主菌株(如大肠杆菌和肺炎克雷伯菌)、代谢途径、关键酶以及阻碍高水平生产的障碍等方面。受代谢工程和合成生物学最新进展的启发,我们提出了克服限制 3-HP 生产的障碍的方案。这些方案包括代谢网络的重新布线、减轻代谢物毒性以及细胞大小和密度的动态控制。特别是,本文强调了微生物生长对 3-HP 生产的重要贡献,因为我们认识到细胞生长和 3-HP 形成之间的同步性。因此,我们总结了以下促进生长的策略:(i)优化发酵条件;(ii)构建基因回路以减轻反馈抑制;(iii)招募 RNA 聚合酶以过表达关键酶,从而促进细胞生长和 3-HP 生产。最后,我们提出了代谢工程方法来简化下游分离和纯化。总的来说,本文旨在描绘细菌生产 3-HP 的图景。