Bioprocess Engineering, Department of Agrotechnology and Food, Wageningen University & Research, Wageningen, The Netherlands.
Biobased Products, Food & Biobased Research, Wageningen University & Research, Wageningen, The Netherlands.
Metab Eng. 2017 Jul;42:66-73. doi: 10.1016/j.ymben.2017.05.005. Epub 2017 Jun 3.
A Monascus ruber strain was isolated that was able to grow on mineral medium at high sugar concentrations and 175g/l lactic acid at pH 2.8. Its genome and transcriptomes were sequenced and annotated. Genes encoding lactate dehydrogenase (LDH) were introduced to accomplish lactic acid production and two genes encoding pyruvate decarboxylase (PDC) were knocked out to subdue ethanol formation. The strain preferred lactic acid to glucose as carbon source, which hampered glucose consumption and therefore also lactic acid production. Lactic acid consumption was stopped by knocking out 4 cytochrome-dependent LDH (CLDH) genes, and evolutionary engineering was used to increase the glucose consumption rate. Application of this strain in a fed-batch fermentation resulted in a maximum lactic acid titer of 190g/l at pH 3.8 and 129g/l at pH 2.8, respectively 1.7 and 2.2 times higher than reported in literature before. Yield and productivity were on par with the best strains described in literature for lactic acid production at low pH.
从红曲霉中分离到一株能够在高糖浓度和 pH 值为 2.8 的 175g/L 乳酸的无机盐培养基中生长的菌株。对其基因组和转录组进行了测序和注释。引入编码乳酸脱氢酶(LDH)的基因以实现乳酸生产,并敲除编码丙酮酸脱羧酶(PDC)的两个基因以抑制乙醇形成。该菌株优先利用乳酸作为碳源,这阻碍了葡萄糖的消耗,因此也抑制了乳酸的生产。通过敲除 4 个细胞色素依赖的 LDH(CLDH)基因来停止乳酸消耗,并通过进化工程来提高葡萄糖消耗速率。该菌株在分批补料发酵中的应用分别在 pH 值为 3.8 和 2.8 时达到了 190g/L 和 129g/L 的最大乳酸浓度,分别比之前文献报道的数值提高了 1.7 倍和 2.2 倍。在低 pH 值下生产乳酸时,该菌株的产率和生产力与文献中描述的最佳菌株相当。