4.6 Article

Engineered Luciferase Reporter from a Deep Sea Shrimp Utilizing a Novel Imidazopyrazinone Substrate

Journal

ACS CHEMICAL BIOLOGY
Volume 7, Issue 11, Pages 1848-1857

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/cb3002478

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Bioluminescence methodologies have been extraordinarily useful :due to their high sensitivity, broad: dynamic range, and operational simplicity. These capabilities have been realized largely through incremental adaptations of native enzymes and substrates, originating from luminous. organisms of diverse evolutionary. lineages. We engineered both an.,enzyme. and substrate in combination to create a novel bioluminescence system: capable Of more efficient light emission with superior biochemical and physical characteristics. Using a small luciferase subunit (19 kDa) from the deep sea Shrimp Oplophorus gracilirostris, we have improved luminescence expression in mammalian cells similar to 2.5 million fold by merging optimization of protein structure with development of a novel imidazopyrazinone substrate (furimazine). The new luciferase, NanoLuc, produces glow type luminescence (signal half-life >2 h) with a specific activity similar to 150-fold greater than that of either firefly (Photinus pyralis) or Renilla luciferases similarly configured for glow type assays. In mammalian cells,NanoLuc shows no evidence of post translational modifications or subcellular partitioning. The enzyme exhibits high physical stability, retaining activity with incubation up to 55 degrees C or in culture Medium for >1.5 h at 37 degrees C. As a genetic reporter NanoLuc may be configured for high sensitivity or for response dynamics by appending a degradation sequence to reduce: intracellular: accumulation. Appending a signal sequence allows NanoLuc to be exported to the culture Medium, where reporter expression can be measured without cell lysis. Fusion onto Other proteins allows luminescent assays of their metabolism or localization within cells. Reporter quantitation is achievable even at very low expression levels to facilitate more reliable coupling with endogenous,cellular processes

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