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PHO13缺失诱导的转录激活可防止工程酿酒酵母木糖代谢过程中景天庚酮糖的积累。

PHO13 deletion-induced transcriptional activation prevents sedoheptulose accumulation during xylose metabolism in engineered Saccharomyces cerevisiae.

作者信息

Xu Haiqing, Kim Sooah, Sorek Hagit, Lee Youngsuk, Jeong Deokyeol, Kim Jungyeon, Oh Eun Joong, Yun Eun Ju, Wemmer David E, Kim Kyoung Heon, Kim Soo Rin, Jin Yong-Su

机构信息

Department of Food Science and Human Nutrition, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.

Department of Biotechnology, Graduate School, Korea University, Seoul, Korea.

出版信息

Metab Eng. 2016 Mar;34:88-96. doi: 10.1016/j.ymben.2015.12.007. Epub 2015 Dec 25.

DOI:10.1016/j.ymben.2015.12.007
PMID:26724864
Abstract

The deletion of PHO13 (pho13Δ) in Saccharomyces cerevisiae, encoding a phosphatase enzyme of unknown specificity, results in the transcriptional activation of genes related to the pentose phosphate pathway (PPP) such as TAL1 encoding transaldolase. It has been also reported that the pho13Δ mutant of S. cerevisiae expressing a heterologous xylose pathway can metabolize xylose efficiently compared to its parental strain. However, the interaction between the pho13Δ-induced transcriptional changes and the phenotypes of xylose fermentation was not understood. Thus we investigated the global metabolic changes in response to pho13Δ when cells were exponentially growing on xylose. Among the 134 intracellular metabolites that we identified, the 98% reduction of sedoheptulose was found to be the most significant change in the pho13Δ mutant as compared to its parental strain. Because sedoheptulose-7-phosphate (S7P), a substrate of transaldolase, reduced significantly in the pho13Δ mutant as well, we hypothesized that limited transaldolase activity in the parental strain might cause dephosphorylation of S7P, leading to carbon loss and inefficient xylose metabolism. Mutants overexpressing TAL1 at different degrees were constructed, and their TAL1 expression levels and xylose consumption rates were positively correlated. Moreover, as TAL1 expression levels increased, intracellular sedoheptulose concentration dropped significantly. Therefore, we concluded that TAL1 upregulation, preventing the accumulation of sedoheptulose, is the most critical mechanism for the improved xylose metabolism by the pho13Δ mutant of engineered S. cerevisiae.

摘要

酿酒酵母中编码一种特异性未知的磷酸酶的PHO13基因缺失(pho13Δ),会导致与磷酸戊糖途径(PPP)相关的基因转录激活,比如编码转醛醇酶的TAL1。也有报道称,表达异源木糖途径的酿酒酵母pho13Δ突变体与其亲本菌株相比,能够更有效地代谢木糖。然而,pho13Δ诱导的转录变化与木糖发酵表型之间的相互作用尚不清楚。因此,我们研究了细胞在木糖上指数生长时,pho13Δ所引发的全局代谢变化。在我们鉴定出的134种细胞内代谢物中,与亲本菌株相比,景天庚酮糖减少98%被发现是pho13Δ突变体中最显著的变化。由于转醛醇酶的底物景天庚酮糖-7-磷酸(S7P)在pho13Δ突变体中也显著减少,我们推测亲本菌株中转醛醇酶活性受限可能导致S7P去磷酸化,从而导致碳损失和木糖代谢效率低下。构建了不同程度过表达TAL1的突变体,它们的TAL1表达水平与木糖消耗速率呈正相关。此外,随着TAL1表达水平的增加,细胞内景天庚酮糖浓度显著下降。因此,我们得出结论,TAL1上调可防止景天庚酮糖积累,这是工程酿酒酵母pho13Δ突变体改善木糖代谢的最关键机制。

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