bioRxiv Science⌕ Search

Biology subjects

Ba, F.

Publications and source records attributed to Ba, F..

3 recordsLinked to original sources

Engineering Escherichia coli to utilize erythritol as sole carbon source

Erythritol, one of the natural sugar alcohols, is widely used as a sugar substitute sweetener in food industries. Human themselves are not able to catabolize erythritol and their gut microbes lack related catabolic pathways either to metabolize erythritol. Here, we engineer Escherichia coli to utilize erythritol as sole carbon source aiming for defined applications. First, we isolate the erythritol metabolic gene cluster and experimentally characterize the erythritol-binding transcriptional repressor and its DNA-binding site. Transcriptome analysis suggests that carbohydrate metabolism-related genes in the engineered E. coli are overall upregulated, which then guides the selection of four genes for overexpression that notably enhances cell growth. Finally, engineered E. coli strains can be used as a living detector to distinguish erythritol-containing soda soft drinks and can grow in the simulated intestinal fluid supplemented with erythritol. We expect our work will inspire the engineering of more hosts to respond and utilize erythritol for broad applications in metabolic engineering, synthetic biology, and biomedical engineering.

synthetic biology↗

Configurable Compartmentation Enables In vitro Reconstitution of Sustained Synthetic Biology Systems

The compartmentalized and communicative nature of biological cells contributes to the complexity and endurance of living organisms. Current in vitro compartmentalization systems such as droplet emulsions reproduce the compartmentalization property of cells yet fail to recapture the configurability of cellular communication with the environment. To mimic biological cells a step further and expand the capabilities of in vitro compartmentalization, we present here a general strategy that inherits the passive transport phenomenon of biology. The strategy incorporates layered, micrometer-sized, hydrogel-based compartments featuring configurability in composition, functionality, and selective permeability of biomolecules. We demonstrated the unique advantage of our strategy in two scenarios of synthetic biology. First, a compartmentalized cell-free protein synthesis system was reconstituted that could support multiple rounds of reactions. Second, we constructed living bacteria-based biosensors in the hydrogel compartments, which could achieve long-lasting functioning with markedly enhanced fitness in complex environments. Looking forward, our strategy should be widely applicable for constructing complex, robust, and sustained in vitro synthetic molecular and cellular systems, paving the way for their practical applications.

synthetic biology↗

SYMBIOSIS: Synthetic Manipulable Biobricks via Orthogonal Serine Integrase Systems

Serine integrases are emerging as one of the most powerful biological tools for synthetic biology. They have been widely used across genome engineering and genetic circuit design. However, developing serine integrase-based tools for directly/precisely manipulating synthetic biobricks is still missing. Here, we report SYMBIOSIS, a versatile method that can robustly manipulate DNA parts in vivo and in vitro. First, we proposed a "Keys match Locks" model to demonstrate that three orthogonal serine integrases are able to irreversibly and stably switch on seven synthetic biobricks with high accuracy in vivo. Then, we demonstrated that purified integrases can facilitate the assembly of "Donor" and "Acceptor" plasmids in vitro to construct composite plasmids. Finally, we used SYMBIOSIS to assemble different chromoprotein genes and create novel colored Escherichia coli. We anticipate that our SYMBIOSIS strategy will accelerate synthetic biobricks manipulation, genetic circuit design, and multiple plasmids assembly for synthetic biology with broad potential applications.

synthetic biology↗