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研究乙酰辅酶 A 合成酶在大肠杆菌分批和连续培养中对葡萄糖和醋酸共利用的影响及其不被乙酰化的特征。

Characterizing the effect of expression of an acetyl-CoA synthetase insensitive to acetylation on co-utilization of glucose and acetate in batch and continuous cultures of E. coli W.

机构信息

Research Area Biochemical Engineering, Institute for Chemical, Environmental and Bioscience Engineering, Technische Universität Wien, Gumpendorfer Straße 1a, 1060, Vienna, Austria.

Christian Doppler Laboratory for Mechanistic and Physiological Methods for Improved Bioprocesses, Gumpendorfer Straße 1a, 1060, Vienna, Austria.

出版信息

Microb Cell Fact. 2018 Jul 9;17(1):109. doi: 10.1186/s12934-018-0955-2.

Abstract

BACKGROUND

Due to its high stress tolerance and low acetate secretion, Escherichia coli W is reported to be a good production host for several metabolites and recombinant proteins. However, simultaneous co-utilization of glucose and other substrates such as acetate remains a challenge. The activity of acetyl-CoA-synthetase, one of the key enzymes involved in acetate assimilation is tightly regulated on a transcriptional and post-translational level. The aim of this study was to engineer E. coli W for overexpression of an acetylation insensitive acetyl-CoA-synthetase and to characterize this strain in batch and continuous cultures using glucose, acetate and during co-utilization of both substrates.

RESULTS

Escherichia coli W engineered to overexpress an acetylation-insensitive acetyl-CoA synthetase showed a 2.7-fold increase in acetate uptake in a batch process containing glucose and high concentrations of acetate compared to a control strain, indicating more efficient co-consumption of glucose and acetate. When acetate was used as the carbon source, batch duration could significantly be decreased in the overexpression strain, possibly due to alleviation of acetate toxicity. Chemostat cultivations with different dilution rates using glucose revealed only minor differences between the overexpression and control strain. Accelerostat cultivations using dilution rates between 0.20 and 0.70 h indicated that E. coli W is naturally capable of efficiently co-utilizing glucose and acetate over a broad range of specific growth rates. Expression of acetyl-CoA synthetase resulted in acetate and glucose accumulation at lower dilution rates compared to the control strain. This observation can possibly be attributed to a higher ratio between acs and pta-ackA in the overexpression strain as revealed by gene expression analysis. This would result in enhanced energy dissipation caused by an imbalance in the Pta-AckA-Acs cycle. Furthermore, yjcH and actP, genes co-transcribed with acetyl-CoA synthetase showed significant down-regulation at elevated dilution rates.

CONCLUSIONS

Escherichia coli W expressing an acetylation-insensitive acetyl-CoA synthetase was shown to be a promising candidate for mixed feed processes using glucose and acetate. Comparison between batch and continuous cultures revealed distinct differences in glucose-acetate co-utilization behavior, requiring additional investigations such as multi-omics analysis and further engineering towards even more efficient co-utilization strains of E. coli W.

摘要

背景

由于其具有较高的耐受力和低乙酸分泌能力,大肠杆菌 W 被报道是许多代谢物和重组蛋白的良好生产宿主。然而,同时利用葡萄糖和其他基质(如乙酸)仍然是一个挑战。参与乙酸同化的关键酶之一乙酰辅酶 A 合酶的活性在转录和翻译后水平上受到严格调控。本研究的目的是构建过表达一种乙酰化不敏感的乙酰辅酶 A 合酶的大肠杆菌 W,并在分批和连续培养中利用葡萄糖、乙酸以及同时利用这两种基质来表征该菌株。

结果

与对照菌株相比,过表达一种乙酰化不敏感的乙酰辅酶 A 合酶的大肠杆菌 W 在含有葡萄糖和高浓度乙酸的分批培养过程中,乙酸摄取量增加了 2.7 倍,表明对葡萄糖和乙酸的协同消耗更为有效。当乙酸作为碳源时,过表达菌株的批次时间可以显著缩短,这可能是由于缓解了乙酸毒性。利用不同稀释率的恒化培养发现,过表达菌株和对照菌株之间只有很小的差异。利用 0.20 至 0.70 h-1 的稀释率进行加速培养实验表明,大肠杆菌 W 自然能够在较宽的比生长速率范围内有效地协同利用葡萄糖和乙酸。与对照菌株相比,乙酰辅酶 A 合酶的表达导致乙酸和葡萄糖在较低的稀释率下积累。这种观察结果可能归因于过表达菌株中 acs 和 pta-ackA 的比例较高,这是通过基因表达分析揭示的。这将导致 Pta-AckA-Acs 循环失衡,从而导致能量消耗增加。此外,与乙酰辅酶 A 合酶共转录的 yjcH 和 actP 基因在较高的稀释率下显著下调。

结论

表达一种乙酰化不敏感的乙酰辅酶 A 合酶的大肠杆菌 W 被证明是利用葡萄糖和乙酸的混合进料过程的有前途的候选菌株。分批和连续培养的比较揭示了葡萄糖-乙酸协同利用行为的明显差异,需要进行额外的研究,如多组学分析和进一步的工程设计,以获得大肠杆菌 W 更有效的协同利用菌株。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca8a/6036698/517852572d60/12934_2018_955_Fig1_HTML.jpg

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