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1.
Nat Commun ; 14(1): 7864, 2023 Nov 29.
Article in English | MEDLINE | ID: mdl-38030625

ABSTRACT

NanoLuc, a superior ß-barrel fold luciferase, was engineered 10 years ago but the nature of its catalysis remains puzzling. Here experimental and computational techniques are combined, revealing that imidazopyrazinone luciferins bind to an intra-barrel catalytic site but also to an allosteric site shaped on the enzyme surface. Structurally, binding to the allosteric site prevents simultaneous binding to the catalytic site, and vice versa, through concerted conformational changes. We demonstrate that restructuration of the allosteric site can boost the luminescent reaction in the remote active site. Mechanistically, an intra-barrel arginine coordinates the imidazopyrazinone component of luciferin, which reacts with O2 via a radical charge-transfer mechanism, and then it also protonates the resulting excited amide product to form a light-emitting neutral species. Concomitantly, an aspartate, supported by two tyrosines, fine-tunes the blue color emitter to secure a high emission intensity. This information is critical to engineering the next-generation of ultrasensitive bioluminescent reporters.


Subject(s)
Luminescent Measurements , Luciferases/metabolism , Catalytic Domain
2.
Nat Commun ; 12(1): 3616, 2021 06 14.
Article in English | MEDLINE | ID: mdl-34127663

ABSTRACT

Protein dynamics are often invoked in explanations of enzyme catalysis, but their design has proven elusive. Here we track the role of dynamics in evolution, starting from the evolvable and thermostable ancestral protein AncHLD-RLuc which catalyses both dehalogenase and luciferase reactions. Insertion-deletion (InDel) backbone mutagenesis of AncHLD-RLuc challenged the scaffold dynamics. Screening for both activities reveals InDel mutations localized in three distinct regions that lead to altered protein dynamics (based on crystallographic B-factors, hydrogen exchange, and molecular dynamics simulations). An anisotropic network model highlights the importance of the conformational flexibility of a loop-helix fragment of Renilla luciferases for ligand binding. Transplantation of this dynamic fragment leads to lower product inhibition and highly stable glow-type bioluminescence. The success of our approach suggests that a strategy comprising (i) constructing a stable and evolvable template, (ii) mapping functional regions by backbone mutagenesis, and (iii) transplantation of dynamic features, can lead to functionally innovative proteins.


Subject(s)
Luciferases/chemistry , Luciferases/genetics , Luciferases/metabolism , Molecular Dynamics Simulation , Protein Engineering , Animals , Binding Sites , Catalysis , Enzyme Stability , Kinetics , Luciferases, Renilla/chemistry , Luciferases, Renilla/genetics , Luciferases, Renilla/metabolism , Mammals , Mice , Mutagenesis , Mutation , NIH 3T3 Cells , Protein Conformation , Temperature
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