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通过系统工程改造酿酒酵母以近乎理论产率生产 D-乳酸。

Systematic engineering of Saccharomyces cerevisiae for D-lactic acid production with near theoretical yield.

机构信息

National Center for Genetic Engineering and Biotechnology, 113 Thailand Science Park, Paholyothin Road, Klong 1, Klong Luang, Pathumthani 12120, Thailand.

出版信息

FEMS Yeast Res. 2021 Apr 28;21(4). doi: 10.1093/femsyr/foab024.

Abstract

D-lactic acid is a chiral three-carbon organic acid that can improve the thermostability of polylactic acid. Here, we systematically engineered Saccharomyces cerevisiae to produce D-lactic acid from glucose, a renewable carbon source, at near theoretical yield. Specifically, we screened D-lactate dehydrogenase (DLDH) variants from lactic acid bacteria in three different genera and identified the Leuconostoc pseudomesenteroides variant (LpDLDH) as having the highest activity in yeast. We then screened single-gene deletions to minimize the production of the side products ethanol and glycerol as well as prevent the conversion of D-lactic acid back to pyruvate. Based on the results of the DLDH screening and the single-gene deletions, we created a strain called ASc-d789M which overexpresses LpDLDH and contains deletions in glycerol pathway genes GPD1 and GPD2 and lactate dehydrogenase gene DLD1, as well as downregulation of ethanol pathway gene ADH1 using the L-methionine repressible promoter to minimize impact on growth. ASc-d789M produces D-lactic acid at a titer of 17.09 g/L in shake-flasks (yield of 0.89 g/g glucose consumed or 89% of the theoretical yield). Fed-batch fermentation resulted in D-lactic acid titer of 40.03 g/L (yield of 0.81 g/g glucose consumed). Altogether, our work represents progress towards efficient microbial production of D-lactic acid.

摘要

D-乳酸是一种手性三碳有机酸,可以提高聚乳酸的热稳定性。在这里,我们系统地对酿酒酵母进行了工程改造,使其能够从葡萄糖(一种可再生碳源)生产接近理论产量的 D-乳酸。具体来说,我们从三个不同属的乳酸菌中筛选出 D-乳酸脱氢酶(DLDH)变体,并确定 Leuconostoc pseudomesenteroides 变体(LpDLDH)在酵母中的活性最高。然后,我们筛选了单基因缺失,以最大限度地减少副产物乙醇和甘油的产生,并防止 D-乳酸回转化为丙酮酸。基于 DLDH 筛选和单基因缺失的结果,我们创建了一个名为 ASc-d789M 的菌株,该菌株过度表达了 LpDLDH,并缺失了甘油途径基因 GPD1 和 GPD2 以及乳酸脱氢酶基因 DLD1,同时使用 L-甲硫氨酸可诱导的启动子下调了乙醇途径基因 ADH1,以最小化对生长的影响。ASc-d789M 在摇瓶中产生 17.09 g/L 的 D-乳酸(消耗 0.89 g/g 葡萄糖的产率或 89%的理论产率)。补料分批发酵使 D-乳酸的浓度达到 40.03 g/L(消耗 0.81 g/g 葡萄糖的产率)。总的来说,我们的工作代表了在高效微生物生产 D-乳酸方面的进展。

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