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Updated: Jan 20, 2026

Scalable Isolation and Purification of Extracellular Vesicles from Escherichia coli and Other Bacteria
Published on: October 13, 2021
Programmable biomolecular switches for rewiring flux in Escherichia coli
Cong Gao1,2, Jianshen Hou1,2, Peng Xu3
1State Key Laboratory of Food Science and Technology, Jiangnan University, Wuxi, 214122, China.
Abstract:
Synthetic biology aims to develop programmable tools to perform complex functions such as redistributing metabolic flux in industrial microorganisms. However, development of protein-level circuits is limited by availability of designable, orthogonal, and composable tools. Here, with the aid of engineered viral proteases and proteolytic signals, we build two sets of controllable protein units, which can be rationally configured to three tools. Using a protease-based dynamic regulation circuit to fine-tune metabolic flow, we achieve 12.63 g L-1 shikimate titer in minimal medium without inducer. In addition, the carbon catabolite repression is alleviated by protease-based inverter-mediated flux redistribution under multiple carbon sources. By coordinating reaction rate using a protease-based oscillator in E. coli, we achieve D-xylonate productivity of 7.12 g L-1 h-1 with a titer of 199.44 g L-1. These results highlight the applicability of programmable protein switches to metabolic engineering for valuable chemicals production.
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