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- W4213448064 abstract "Significance The enormous complexity of metabolic pathways, in both their regulation and propensity for metabolite cross-talk, represents a major obstacle for metabolic engineering. Self-assembling, catalytically programmable and genetically transferable bacterial microcompartments (BMCs) offer solutions to decrease this complexity through compartmentalization of enzymes within a selectively permeable protein shell. Synthetic BMCs can operate as autonomous metabolic modules decoupled from the cell’s regulatory network, only interfacing with the cell’s metabolism via the highly engineerable proteinaceous shell. Here, we build a synthetic, modular, multienzyme BMC. It functions not only as a proof-of-concept for next-generation metabolic engineering, but also provides the foundation for subsequent tuning, with the goal to create a microanaerobic environment protecting an oxygen-sensitive reaction in aerobic growth conditions that could be deployed." @default.
- W4213448064 created "2022-02-25" @default.
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- W4213448064 date "2022-02-22" @default.
- W4213448064 modified "2023-10-18" @default.
- W4213448064 title "Toward a glycyl radical enzyme containing synthetic bacterial microcompartment to produce pyruvate from formate and acetate" @default.
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- W4213448064 doi "https://doi.org/10.1073/pnas.2116871119" @default.
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