Department of Biotechnology, Korea University, Seoul 02841, Republic of Korea.
ACS Synth Biol. 2021 Jun 18;10(6):1553-1562. doi: 10.1021/acssynbio.1c00168. Epub 2021 May 21.
Biobased processes to minimize environmental pollutants have attracted much attention. l-Carnosine has been produced by chemical synthesis, and as an alternative to this method, we newly developed engineered synthesizing l-carnosine. To develop the strain, the pentose phosphate pathway (PPP) was enhanced by attenuating flux to nonoxidative PPP. Enhanced PPP strengthened the histidine pathway and produced 5.0 g/L l-histidine and 3.9 mg/L l-carnosine. Then, the histidine synthetic pathway was reinforced by overexpressing HisG and Rel. This pathway reduced feedback inhibition by l-histidine and strengthened the flux of the histidine pathway; thus, it produced 552.20 mg/g l-histidine. As a result, enhancement of the PPP accumulates more l-histidine than the histidine pathway; thus, the PPP was further enhanced by gene alteration. For sufficient β-alanine products, PanD was overexpressed and produced 99.17 mg/L l-carnosine. The final strain, Car15, which consolidated all three pathways, produced 323.26 mg/L l-carnosine fed-batch fermentation. Finally, we confirmed the antioxidant and antiglycation effects of biologically synthesized l-carnosine, and the biologically synthesized l-carnosine showed inhibitory activity similar to that of commercial l-carnosine. Consequently, this study suggested a new biosynthetic process for l-carnosine and showed potential as a treatment for metabolic disorders through the assessment of its functions.
生物基工艺可最大限度减少环境污染物,受到了广泛关注。l-肌肽曾通过化学合成法生产,作为替代该方法,我们全新开发了工程化合成 l-肌肽的方法。为了开发该菌株,我们削弱了非氧化戊糖磷酸途径(PPP)的通量,从而增强了 PPP。增强的 PPP 加强了组氨酸途径,并生产了 5.0 g/L l-组氨酸和 3.9 mg/L l-肌肽。然后,通过过表达 HisG 和 Rel 来强化组氨酸合成途径。该途径通过 l-组氨酸的反馈抑制,并加强了组氨酸途径的通量,从而生产了 552.20 mg/g l-组氨酸。结果,PPP 的增强比组氨酸途径积累了更多的 l-组氨酸;因此,通过基因改变进一步增强了 PPP。为了获得足够的β-丙氨酸产物,过表达了 PanD 并生产了 99.17 mg/L l-肌肽。最终的菌株 Car15 整合了所有三种途径,在分批补料发酵中生产了 323.26 mg/L l-肌肽。最后,我们证实了生物合成的 l-肌肽具有抗氧化和抗糖化作用,生物合成的 l-肌肽具有与商业 l-肌肽相似的抑制活性。因此,本研究提出了一种新的 l-肌肽生物合成工艺,并通过评估其功能显示出了治疗代谢紊乱的潜力。