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bioRxiv · 10.1101/2020.03.11.988071

A bottom-up approach for the de novo design of functional proteins

Abstract

De novo protein design has enabled the creation of novel protein structures. To design novel functional proteins, state-of-the-art approaches use natural proteins or first design protein scaffolds that subsequently serve as templates for the transplantation of functional motifs. In these approaches, the templates are function-agnostic and motifs have been limited to those with regular secondary structure. Here, we present a bottom-up approach to build de novo proteins tailored to structurally complex functional motifs. We applied a bottom-up strategy to design scaffolds for four different binding motifs, including one bi-functionalized protein with two motifs. The de novo proteins were functional as biosensors to quantify epitope-specific antibody responses and as orthogonal ligands to activate a signaling pathway in engineered mammalian cells. Altogether, we present a versatile strategy for the bottom-up design of functional proteins, applicable to a wide range of functional protein design challenges.

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BibTeXRIS

Yang, C., Sesterhenn, F., Bonet, J., Aalen, E. v., Scheller, L., Abriata, L., Cramer, J., Wen, X., Rosset, S., Georgeon, S., Jardetzky, T. S., Krey, T., Fussenegger, M., Merkx, M., Correia, B.. 2020-03-12. A bottom-up approach for the de novo design of functional proteins. https://doi.org/10.1101/2020.03.11.988071

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