A versatile method for designing biosensors via regulatory domains of allosteric enzymes.
basic_science · Level V
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- Record sourced from PubMed, PMID 42161969.
- Also identified by DOI 10.1038/s41467-026-73277-9.
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Abstract
Genetically encoded fluorescent biosensors (GEFBs) are invaluable tools for spatiotemporal metabolite monitoring in cellular metabolism, yet their development for many key metabolites is hampered by a lack of specific biorecognition elements. Here, we report a versatile strategy to engineer metabolite-responsive GEFBs by leveraging the allosteric properties of regulatory domains from allosteric enzymes. Using regulatory domains from chorismate mutase, 2-acetolactate synthase, and D-citramalate synthase as biorecognition elements, we construct three biosensors for specific L-phenylalanine, L-valine, and L-isoleucine detection. We further demonstrate that multi-ligand-binding regulatory domains can be exploited to derive diverse specific biosensors, and apply this strategy to develop two S-adenosyl-L-methionine biosensors and an S-methyl-5'-thioadenosine biosensor. We also showcase the utility of these biosensors for real-time, in situ tracking of target metabolites in living cells, as well as bioprocess monitoring and clinical diagnostics. Overall, this study establishes a flexible strategy that provides insights to construct GEFBs targeting other metabolites.