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通过在磷酸果糖激酶缺失菌株中表达磷酸酮醇酶和磷酸转乙酰酶提高解脂耶氏酵母的脂质产量。

Increasing lipid yield in Yarrowia lipolytica through phosphoketolase and phosphotransacetylase expression in a phosphofructokinase deletion strain.

作者信息

Kamineni Annapurna, Consiglio Andrew L, MacEwen Kyle, Chen Shuyan, Chifamba Gamuchirai, Shaw A Joe, Tsakraklides Vasiliki

机构信息

Ginkgo Bioworks, 27 Drydock Ave, Boston, Massachusetts, United States.

, Belmont, Massachusetts, United States.

出版信息

Biotechnol Biofuels. 2021 May 4;14(1):113. doi: 10.1186/s13068-021-01962-6.

Abstract

BACKGROUND

Lipids are important precursors in the biofuel and oleochemical industries. Yarrowia lipolytica is among the most extensively studied oleaginous microorganisms and has been a focus of metabolic engineering to improve lipid production. Yield improvement, through rewiring of the central carbon metabolism of Y. lipolytica from glucose to the lipid precursor acetyl-CoA, is a key strategy for achieving commercial success in this organism.

RESULTS

Building on YB-392, a Y. lipolytica isolate known for stable non-hyphal growth and low citrate production with demonstrated potential for high lipid accumulation, we assembled a heterologous pathway that redirects carbon flux from glucose through the pentose phosphate pathway (PPP) to acetyl-CoA. We used phosphofructokinase (Pfk) deletion to block glycolysis and expressed two non-native enzymes, phosphoketolase (Xpk) and phosphotransacetylase (Pta), to convert PPP-produced xylulose-5-P to acetyl-CoA. Introduction of the pathway in a pfk deletion strain that is unable to grow and accumulate lipid from glucose in defined media ensured maximal redirection of carbon flux through Xpk/Pta. Expression of Xpk and Pta restored growth and lipid production from glucose. In 1-L bioreactors, the engineered strains recorded improved lipid yield and cell-specific productivity by up to 19 and 78%, respectively.

CONCLUSIONS

Yields and cell-specific productivities are important bioprocess parameters for large-scale lipid fermentations. Improving these parameters by engineering the Xpk/Pta pathway is an important step towards developing Y. lipolytica as an industrially preferred microbial biocatalyst for lipid production.

摘要

背景

脂质是生物燃料和油脂化学工业中的重要前体物质。解脂耶氏酵母是研究最为广泛的产油微生物之一,一直是代谢工程提高脂质产量的重点研究对象。通过对解脂耶氏酵母的中心碳代谢进行重新布线,使其从葡萄糖转向脂质前体乙酰辅酶A,从而提高产量,是在该生物体中取得商业成功的关键策略。

结果

基于YB - 392(一种以稳定的非菌丝生长、低柠檬酸产量以及高脂质积累潜力而闻名的解脂耶氏酵母分离株),我们组装了一条异源途径,该途径将碳通量从葡萄糖通过磷酸戊糖途径(PPP)重定向至乙酰辅酶A。我们利用磷酸果糖激酶(Pfk)缺失来阻断糖酵解,并表达两种非天然酶,磷酸酮醇酶(Xpk)和磷酸转乙酰酶(Pta),以将PPP产生的木酮糖 - 5 - 磷酸转化为乙酰辅酶A。在一种pfk缺失菌株中引入该途径,该菌株在限定培养基中无法利用葡萄糖生长和积累脂质,这确保了通过Xpk/Pta实现碳通量的最大重定向。Xpk和Pta的表达恢复了从葡萄糖的生长和脂质生产。在1升生物反应器中,工程菌株的脂质产量和细胞特异性生产力分别提高了高达19%和78%。

结论

产量和细胞特异性生产力是大规模脂质发酵的重要生物过程参数。通过工程改造Xpk/Pta途径来改善这些参数是将解脂耶氏酵母发展成为工业上首选的脂质生产微生物生物催化剂的重要一步。

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