Regulating enzymatic reactions in Escherichia coli utilizing light-responsive cellular compartments based on liquid-liquid phase separation
Huang, Z.; Sun, L.; Lu, G.; Liu, H.; Zhai, Z.; Feng, S.; Gao, J.; Chen, C.; Qing, C.; Fang, M.; Chen, B.; Fu, J.; Wang, X.; Chen, G.-Q.
Show abstract
Enzymatic reactions in cells are well organized into different compartments, among which protein-based membraneless compartments formed through liquid-liquid phase separation (LLPS) are believed to play important roles1,2. Hijacking them for our own purpose has promising applications in metabolic engineering3. Yet, it is still hard to precisely and dynamically control target enzymatic reactions in those compartments4. To address those problems, we developed Photo-Activated Switch in E. coli (PhASE), based on phase separating scaffold proteins and optogenetic tools. In this system, a protein of interest (POI) can be enriched up to 15-fold by LLPS-based compartments from cytosol within only a few seconds once activated by light, and become fully dispersed again within 15 minutes. Furthermore, we explored the potentiality of the LLPS-based compartment in enriching small organic molecules directly via chemical-scaffold interaction. With enzymes and substrates co-localized under light induction, the overall reaction efficiency could be enhanced. Using luciferin and catechol oxidation as model enzymatic reactions, we found that they could accelerate 2.3-fold and 1.6-fold, respectively, when regulated by PhASE. We anticipate our system to be an extension of the synthetic biology toolkit, facilitating rapid recruitment and release of POIs, and reversible regulation of enzymatic reactions.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- A light tunable differentiation system for the creation and control of consortia in yeast 96%
- A versatile active learning workflow for optimization of genetic and metabolic networks 95%
- LITESEC-T3SS - Light-controlled protein delivery into eukaryotic cells with high spatial and temporal resolution 95%
Similar papers in this journal
Similar papers in this journal
- Exploration of natural red-shifted rhodopsins using a machine learning-based Bayesian experimental design 95%
- Light-harvesting by antenna-containing xanthorhodopsin from an Antarctic cyanobacterium 95%
- Cell-free expression with a quartz crystal microbalance enables rapid, dynamic, and label-free characterization of membrane-interacting proteins 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.