跳转至内容
Merck
CN
  • Experimental design-aided systematic pathway optimization of glucose uptake and deoxyxylulose phosphate pathway for improved amorphadiene production.

Experimental design-aided systematic pathway optimization of glucose uptake and deoxyxylulose phosphate pathway for improved amorphadiene production.

Applied microbiology and biotechnology (2015-02-27)
Congqiang Zhang, Ruiyang Zou, Xixian Chen, Gregory Stephanopoulos, Heng-Phon Too
摘要

Artemisinin is a potent antimalarial drug; however, it suffers from unstable and insufficient supply from plant source. Here, we established a novel multivariate-modular approach based on experimental design for systematic pathway optimization that succeeded in improving the production of amorphadiene (AD), the precursor of artemisinin, in Escherichia coli. It was initially found that the AD production was limited by the imbalance of glyceraldehyde 3-phosphate (GAP) and pyruvate (PYR), the two precursors of the 1-deoxy-D-xylulose-5-phosphate (DXP) pathway. Furthermore, it was identified that GAP and PYR could be balanced by replacing the phosphoenolpyruvate (PEP)-dependent phosphotransferase system (PTS) with the ATP-dependent galactose permease and glucose kinase system (GGS) and this resulted in fivefold increase in AD titer (11 to 60 mg/L). Subsequently, the experimental design-aided systematic pathway optimization (EDASPO) method was applied to systematically optimize the transcriptional expressions of eight critical genes in the glucose uptake and the DXP and AD synthesis pathways. These genes were classified into four modules and simultaneously controlled by T7 promoter or its variants. A regression model was generated using the four-module experimental data and predicted the optimal expression ratios among these modules, resulting in another threefold increase in AD titer (60 to 201 mg/L). This EDASPO method may be useful for the optimization of other pathways and products beyond the scope of this study.

材料
产品编号
品牌
产品描述

Sigma-Aldrich
乙酸乙酯, ACS reagent, ≥99.5%
Sigma-Aldrich
乙酸乙酯, suitable for HPLC, ≥99.7%
Sigma-Aldrich
乙酸乙酯, HPLC Plus, for HPLC, GC, and residue analysis, 99.9%
Sigma-Aldrich
十二烷, ReagentPlus®, ≥99%
Sigma-Aldrich
乙酸乙酯, puriss. p.a., ACS reagent, reag. ISO, reag. Ph. Eur., ≥99.5% (GC)
Sigma-Aldrich
乙酸乙酯, suitable for HPLC, ≥99.8%
Sigma-Aldrich
乙酸乙酯, anhydrous, 99.8%
Supelco
乙酸乙酯, analytical standard
Sigma-Aldrich
十二烷, anhydrous, ≥99%
Sigma-Aldrich
β-石竹烯, ≥80%, FCC, FG
Supelco
乙酸乙酯, Pharmaceutical Secondary Standard; Certified Reference Material
Sigma-Aldrich
(-)-反式石竹烯, ≥98.0% (sum of enantiomers, GC)
Supelco
十二烷, analytical standard
Sigma-Aldrich
乙酸乙酯, ≥99%, FCC, FG
Sigma-Aldrich
乙酸乙酯, ACS reagent, ≥99.5%
Sigma-Aldrich
乙酸乙酯, puriss., meets analytical specification of Ph. Eur., BP, NF, ≥99.5% (GC)
Sigma-Aldrich
乙酸乙酯, natural, ≥99%, FCC, FG
Sigma-Aldrich
乙酸乙酯, biotech. grade, ≥99.8%
Supelco
(-)-反式石竹烯, analytical standard
Sigma-Aldrich
乙酸乙酯, ReagentPlus®, ≥99.8%
Supelco
密度标准品 749kg/m3, H&D Fitzgerald Ltd. Quality