Design of novel granulopoietic proteins by topological rescaffolding

Hernandez Alvarez, Birte and Skokowa, Julia and Coles, Murray and Mir, Perihan and Nasri, Masoud and Maksymenko, Kateryna and Weidmann, Laura and Rogers, Katherine W. and Welte, Karl and Lupas, Andrei N. and Müller, Patrick and ElGamacy, Mohammad and Khosla, Chaitan (2020) Design of novel granulopoietic proteins by topological rescaffolding. PLOS Biology, 18 (12). e3000919. ISSN 1545-7885

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Abstract

Computational protein design is rapidly becoming more powerful, and improving the accuracy of computational methods would greatly streamline protein engineering by eliminating the need for empirical optimization in the laboratory. In this work, we set out to design novel granulopoietic agents using a rescaffolding strategy with the goal of achieving simpler and more stable proteins. All of the 4 experimentally tested designs were folded, monomeric, and stable, while the 2 determined structures agreed with the design models within less than 2.5 Å. Despite the lack of significant topological or sequence similarity to their natural granulopoietic counterpart, 2 designs bound to the granulocyte colony-stimulating factor (G-CSF) receptor and exhibited potent, but delayed, in vitro proliferative activity in a G-CSF-dependent cell line. Interestingly, the designs also induced proliferation and differentiation of primary human hematopoietic stem cells into mature granulocytes, highlighting the utility of our approach to develop highly active therapeutic leads purely based on computational design.

Item Type: Article
Subjects: Digital Academic Press > Biological Science
Depositing User: Unnamed user with email support@digiacademicpress.org
Date Deposited: 19 Jan 2023 11:56
Last Modified: 25 May 2024 08:57
URI: http://science.researchersasian.com/id/eprint/29

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