Related Experiment Video
Updated: Jan 23, 2026

Large-scale Production of Recombinant RNAs on a Circular Scaffold Using a Viroid-derived System in Escherichia coli
Published on: November 30, 2018
Systematic Metabolic Engineering and Model-Guided Optimization for High-Level Production of L-Theanine from Xylose in
Haolin Han1, Boyuan Xue1, Guangqi Shan1
1State Key Laboratory of Green Biomanufacturing, National Energy R&D Center for Biorefinery, Beijing Key Laboratory of Green Chemicals Biomanufacturing, Beijing Synthetic Bio-Manufacturing Technology Innovation Center, Beijing University of Chemical Technology, Beijing, P. R. China.
Abstract:
Lignocellulosic biomass represents a promising sustainable feedstock for biomanufacturing, yet the efficient conversion of its dominant pentose, D-xylose, into high-value α-ketoglutarate derivatives like L-theanine remains challenging due to the inherent carbon loss and low yield of conventional metabolic pathways. To overcome this limitation, a novel microbial platform was developed by reconstituting the carbon-conserving Weimberg pathway in E. coli, enabling the direct and de novo biosynthesis of L-theanine from xylose in just 7 enzymatic steps. Through comprehensive metabolic engineering, including the blocking of competitive pathways, enhancing the precursor supply, and fine-tuning cofactor balance, the overproducing strain TH 4-4 achieved a titer of 9.94 g/L and a yield of 0.33 g/g. Furthermore, flux balance analysis of enzyme-constrained metabolic network model was used to quantitatively assess metabolic trade-offs, and a two-stage microaerobic-aerobic cultivation strategy was implemented, resulting in the highest titer of 14.31 g/L and a yield of 0.48 g/g, representing a 2811.4-fold increase compared to the original strain. Finally, a fed-batch fermentation of the engineered strain achieved a titer of 95.42 g/L, a yield of 0.55 g/g xylose, and a productivity of 1.33 g/L/h. This work pioneers the high-level production of L-theanine from xylose and provides a transformative framework for the sustainable valorization of lignocellulosic sugars into valuable TCA cycle derivatives.
Related Concept Videos
What is Metabolism?
Random and Systematic Errors
Systematic Sampling Method
Systematic sampling is one of the simplest methods...
Propagation of Uncertainty from Systematic Error
What is Genetic Engineering?
High-Level and Low-Level Awareness

