跳转至内容
Merck
  • Determination of key enzymes for threonine synthesis through in vitro metabolic pathway analysis.

Determination of key enzymes for threonine synthesis through in vitro metabolic pathway analysis.

Microbial cell factories (2015-06-14)
Yanfei Zhang, Qinglong Meng, Hongwu Ma, Yongfei Liu, Guoqiang Cao, Xiaoran Zhang, Ping Zheng, Jibin Sun, Dawei Zhang, Wenxia Jiang, Yanhe Ma
摘要

The overexpression of key enzymes in a metabolic pathway is a frequently used genetic engineering strategy for strain improvement. Metabolic control analysis has been proposed to quantitatively determine key enzymes. However, the lack of quality data often makes it difficult to correctly identify key enzymes through control analysis. Here, we proposed a method combining in vitro metabolic pathway analysis and proteomics measurement to find the key enzymes in threonine synthesis pathway. All enzymes in the threonine synthesis pathway were purified for the reconstruction and perturbation of the in vitro pathway. Label-free proteomics technology combined with APEX (absolute protein expression measurements) data analysis method were employed to determine the absolute enzyme concentrations in the crude enzyme extract obtained from a threonine production strain during the fastest threonine production period. The flux control coefficient of each enzyme in the pathway was then calculated by measuring the flux changes after titration of the corresponding enzyme. The isoenzyme LysC catalyzing the first step in the pathway has the largest flux control coefficient, and thus its concentration change has the biggest impact on pathway flux. To verify that the key enzyme identified through in vitro pathway analysis is also the key enzyme in vivo, we overexpressed LysC in the original threonine production strain. Fermentation results showed that the threonine concentration was increased 30% and the yield was increased 20%. In vitro metabolic pathways simulating in vivo cells can be built based on precise measurement of enzyme concentrations through proteomics technology and used for the determination of key enzymes through metabolic control analysis. This provides a new way to find gene overexpression targets for industrial strain improvement.

材料
货号
品牌
产品描述

Sigma-Aldrich
氯化镁 溶液, for molecular biology, 1.00 M±0.01 M
Sigma-Aldrich
氯化镁, anhydrous, ≥98%
Sigma-Aldrich
DL-二硫代苏糖醇 溶液, BioUltra, for molecular biology, ~1 M in H2O
Supelco
DL-二硫代苏糖醇 溶液, 1 M in H2O
Sigma-Aldrich
吡哆醛5'-磷酸盐 水合物, ≥98%
Sigma-Aldrich
氯化镁, powder, <200 μm
Sigma-Aldrich
L-苏氨酸, from non-animal source, meets EP, JP, USP testing specifications, suitable for cell culture, 99.0-101.0%
Sigma-Aldrich
氯化镁 溶液, BioUltra, for molecular biology, 2 M in H2O
Sigma-Aldrich
氯化镁, BioReagent, suitable for insect cell culture, ≥97.0%
Sigma-Aldrich
吡哆醛5'-磷酸盐 一水合物, ≥97.0% (NT)
SAFC
L-苏氨酸
Sigma-Aldrich
DL-甲硫氨酸, ≥99%
Sigma-Aldrich
氯化镁 溶液, PCR Reagent, 25 mM MgCI2 solution for PCR
Sigma-Aldrich
氯化镁, AnhydroBeads, −10 mesh, 99.9% trace metals basis
Sigma-Aldrich
吡哆醛5'-磷酸盐 水合物, powder, BioReagent, suitable for cell culture
Sigma-Aldrich
L-苏氨酸, BioXtra, ≥99.5% (NT)
Sigma-Aldrich
氯化镁, AnhydroBeads, −10 mesh, 99.99% trace metals basis
Sigma-Aldrich
L-苏氨酸, reagent grade, ≥98% (HPLC)
Sigma-Aldrich
DL-甲硫氨酸, 99%, FCC, FG
Sigma-Aldrich
氯化镁 溶液, 0.1 M
Sigma-Aldrich
DL-甲硫氨酸, BioReagent, suitable for cell culture, suitable for insect cell culture, ≥99%
Sigma-Aldrich
氯化镁 溶液, BioUltra, for molecular biology, ~1 M in H2O
Sigma-Aldrich
氯化镁 溶液, BioUltra, for molecular biology, ~0.025 M in H2O