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使用全大肠杆菌无细胞转录-翻译系统合成 2.3mg/ml 的蛋白质。

Synthesis of 2.3 mg/ml of protein with an all Escherichia coli cell-free transcription-translation system.

机构信息

School of Physics and Astronomy, University of Minnesota, 116 Church Street SE, Minneapolis 55455, Minnesota, United States.

School of Physics and Astronomy, University of Minnesota, 116 Church Street SE, Minneapolis 55455, Minnesota, United States.

出版信息

Biochimie. 2014 Apr;99:162-8. doi: 10.1016/j.biochi.2013.11.025. Epub 2013 Dec 8.

Abstract

Cell-free protein synthesis is becoming a useful technique for synthetic biology. As more applications are developed, the demand for novel and more powerful in vitro expression systems is increasing. In this work, an all Escherichia coli cell-free system, that uses the endogenous transcription and translation molecular machineries, is optimized to synthesize up to 2.3 mg/ml of a reporter protein in batch mode reactions. A new metabolism based on maltose allows recycling of inorganic phosphate through its incorporation into newly available glucose molecules, which are processed through the glycolytic pathway to produce more ATP. As a result, the ATP regeneration is more efficient and cell-free protein synthesis lasts up to 10 h. Using a commercial E. coli strain, we show for the first time that more than 2 mg/ml of protein can be synthesized in run-off cell-free transcription-translation reactions by optimizing the energy regeneration and waste products recycling. This work suggests that endogenous enzymes present in the cytoplasmic extract can be used to implement new metabolic pathways for increasing protein yields. This system is the new basis of a cell-free gene expression platform used to construct and to characterize complex biochemical processes in vitro such as gene circuits.

摘要

无细胞蛋白质合成正在成为合成生物学中一种有用的技术。随着更多应用的开发,对新型、更强大的体外表达系统的需求也在不断增加。在这项工作中,我们优化了一种完全基于大肠杆菌的无细胞系统,该系统利用内源性转录和翻译分子机制,在分批反应中可将报告蛋白的产量提高至 2.3mg/ml。一种新的基于麦芽糖的代谢途径可以通过将无机磷酸盐掺入新生成的可用葡萄糖分子中,来实现磷酸盐的循环利用,这些葡萄糖分子随后通过糖酵解途径生成更多的 ATP。因此,ATP 的再生效率更高,无细胞蛋白质合成可持续长达 10 小时。使用一种商业的大肠杆菌菌株,我们首次通过优化能量再生和废物循环利用,证明在无细胞转录-翻译反应中可以合成超过 2mg/ml 的蛋白质。这项工作表明,细胞质提取物中存在的内源性酶可以用于构建新的代谢途径,以提高蛋白质产量。该系统是无细胞基因表达平台的新基础,用于在体外构建和表征复杂的生化过程,如基因回路。

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