De novo design of a homo-trimeric amantadine-binding protein.

Park, Jooyoung; Selvaraj, Brinda; McShan, Andrew C; Boyken, Scott E; Wei, Kathy Y; Oberdorfer, Gustav; DeGrado, William; Sgourakis, Nikolaos G et al. · Elife · 2019

basic_science · Level V

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Abstract

The computational design of a symmetric protein homo-oligomer that binds a symmetry-matched small molecule larger than a metal ion has not yet been achieved. We used de novo protein design to create a homo-trimeric protein that binds the C<sub>3</sub> symmetric small molecule drug amantadine with each protein monomer making identical interactions with each face of the small molecule. Solution NMR data show that the protein has regular three-fold symmetry and undergoes localized structural changes upon ligand binding. A high-resolution X-ray structure reveals a close overall match to the design model with the exception of water molecules in the amantadine binding site not included in the Rosetta design calculations, and a neutron structure provides experimental validation of the computationally designed hydrogen-bond networks. Exploration of approaches to generate a small molecule inducible homo-trimerization system based on the design highlight challenges that must be overcome to computationally design such systems.

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