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通过过表达 SAGA 复合物组件提高耐受力,从甘油中提高乙醇产量。

Increased ethanol production from glycerol by Saccharomyces cerevisiae strains with enhanced stress tolerance from the overexpression of SAGA complex components.

机构信息

School of Life Sciences and Biotechnology, Korea University, Seoul 136-701, Republic of Korea.

出版信息

Enzyme Microb Technol. 2012 Sep 10;51(4):237-43. doi: 10.1016/j.enzmictec.2012.07.003. Epub 2012 Jul 16.

Abstract

During the industrial production of ethanol using yeast, the cells are exposed to stresses that affect their growth and productivity; therefore, stress-tolerant yeast strains are highly desirable. To increase ethanol production from glycerol, a greater tolerance to osmotic and ethanol stress was engineered in yeast strains that were impaired in endogenous glycerol production by the overexpression of both SPT3 and SPT15, components of the SAGA (Spt-Ada-Gcn5-acetyltransferase) complex. The engineered strain YPH499fps1Δgpd2Δ (pGcyaDak, pGupSpt3.15Cas) formed significantly more biomass compared to the strain YPH499fps1Δgpd2Δ (pGcyaDak, pGupCas), and both engineered strains displayed increased biomass when compared to the control YPH499 fps1Δgpd2Δ (pESC-TRP) strain. The trehalose accumulation and ergosterol content of these strains were 2.3-fold and 1.6-fold higher, respectively, than the parent strains, suggesting that levels of cellular membrane components were correlated with the enhanced stress tolerance of the engineered strains. Consequently, the ethanol production of the engineered strain YPH499fps1Δgpd2Δ (pGcyaDak, pGupSpt3.15Cas) was 1.8-fold more than that of strain YPH499fps1Δgpd2Δ (pGcyaDak, pGupCas), with about 8.1g/L ethanol produced. In conclusion, we successfully established that the co-expression of SPT3 and SPT15 that improved the fermentation performance of the engineered yeast strains which produced higher ethanol yields than stress-sensitive yeast strains.

摘要

在使用酵母进行工业生产乙醇的过程中,细胞会受到影响其生长和生产力的压力;因此,高度需要耐受压力的酵母菌株。为了增加甘油生产乙醇的产量,通过过度表达 SPT3 和 SPT15,即 SAGA(Spt-Ada-Gcn5-acetyltransferase)复合物的组成部分,在原本内源性甘油生产受损的酵母菌株中,工程菌株实现了对渗透和乙醇压力的更大耐受。与 YPH499fps1Δgpd2Δ(pGcyaDak,pGupCas)菌株相比,工程菌株 YPH499fps1Δgpd2Δ(pGcyaDak,pGupSpt3.15Cas)形成了明显更多的生物量,并且与对照 YPH499 fps1Δgpd2Δ(pESC-TRP)菌株相比,这两个工程菌株的生物量都有所增加。这些菌株的海藻糖积累和麦角固醇含量分别比亲本菌株高 2.3 倍和 1.6 倍,表明细胞膜成分的水平与工程菌株增强的应激耐受性相关。因此,工程菌株 YPH499fps1Δgpd2Δ(pGcyaDak,pGupSpt3.15Cas)的乙醇产量比 YPH499fps1Δgpd2Δ(pGcyaDak,pGupCas)菌株高 1.8 倍,约产生 8.1g/L 的乙醇。总之,我们成功地建立了 SPT3 和 SPT15 的共表达,改善了工程酵母菌株的发酵性能,使其比应激敏感的酵母菌株产生更高的乙醇产量。

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