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Vlahakis, N. W.

Publications and source records attributed to Vlahakis, N. W..

2 recordsLinked to original sources

Combining MicroED and native mass spectrometry for structural discovery of enzyme-biosynthetic inhibitor complexes

With the goal of accelerating the discovery of small molecule-protein complexes, we leverage fast, low-dose, event based electron counting microcrystal electron diffraction (MicroED) data collection and native mass spectrometry. This approach resolves structures of the epoxide-based cysteine protease inhibitor, and natural product, E-64, and its biosynthetic analogs bound to the model cysteine protease, papain. The combined structural power of MicroED and the analytical capabilities of native mass spectrometry (ED-MS) allows assignment of papain structures bound to E-64-like ligands with data obtained from crystal slurries soaked with mixtures of known inhibitors, and crude biosynthetic reactions. ED-MS further discriminates the highest-affinity ligand soaked into microcrystals from a broad inhibitor cocktail, and identifies multiple similarly high-affinity ligands soaked into microcrystals simultaneously. This extends to libraries of printed ligands dispensed directly onto TEM grids and later soaked with papain microcrystal slurries. ED-MS identifies papain binding to its preferred natural products, by showing that two analogues of E-64 outcompete others in binding to papain crystals, and by detecting papain bound to E-64 and an analogue from crude biosynthetic reactions, without purification. This illustrates the utility of ED-MS for natural product ligand discovery and for structure-based screening of small molecule binders to macromolecular targets.

biophysics↗

Biosynthetic characterization and combinatorial biocatalysis of the cysteine protease inhibitor E-64

E-64 is an irreversible and selective cysteine protease inhibitor prominently used in chemical biology and drug discovery. In this work, we uncovered and characterized the NRPS-independent pathway responsible for biosynthesis of E-64, which is widely conserved in fungi. Heterologous reconstitution and biochemical assays show the pathway starts with epoxidation of fumaric acid to the warhead (2S,3S)-trans-epoxysuccinic acid with an -ketoglutarate (KG)/Fe(II)-dependent oxygenase, followed by successive condensation with an O_SCPLOWLC_SCPLOW-amino acid by an ATP-grasp enzyme, and with an amine by the first characterized amide bond synthetase from fungi. Both amide bond-forming enzymes displayed significant biocatalytic potential, including scalability, stereoselectivity towards the warhead and broader substrate scopes in forming the amide bonds. Combinatorial biocatalysis with the two amide-bond forming enzymes generated a library of cysteine protease inhibitors and led to more potent analogs towards cathepsin B. In addition, preparative synthesis of clinically relevant cysteine protease inhibitors was accomplished from a single reaction mixture. Our work highlights the importance of biosynthetic investigation for enzyme discovery and the potential of amide bond-forming enzymes as biocatalysts for a library synthesis of small molecules.

biochemistry↗