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Abstract
Monobodies are synthetic non-immunoglobulin customizable protein binders invaluable to basic and applied research, and of considerable potential as future therapeutics and diagnostic tools. The ability to reversibly control their binding activity to their targets on demand would significantly expand their applications in biotechnology, medicine, and research. Here we present, as proof-of-principle, the development of a light-controlled monobody (OptoMB) that works in vitro and in cells and whose affinity for its SH2-domain target exhibits a 330-fold shift in binding affinity upon illumination. We demonstrate that our αSH2-OptoMB can be used to purify SH2-tagged proteins directly from crude E. coli extract, achieving 99.8% purity and over 40% yield in a single purification step. By virtue of their ability to be designed to bind any protein of interest, OptoMBs have the potential to find new powerful applications as light-switchable binders of untagged proteins with the temporal and spatial precision afforded by light.
The ability to reversibly control monobody binding affinity would find use in biotechnology and research applications. Here the authors fuse the light-sensitive AsLOV2 domain to a monobody against the Abl SH2 domain to obtain a light dependent monobody and apply it in vitro and in mammalian cells.
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Details
; Zhao, Evan M 1 ; Gil, Agnieszka A 2 ; Alam, Nathan 1 ; Toettcher, Jared E 2
; Avalos, José L 3
1 Princeton University, Department of Chemical and Biological Engineering, Princeton, USA (GRID:grid.16750.35) (ISNI:0000 0001 2097 5006)
2 Princeton University, Department of Molecular Biology, Princeton, USA (GRID:grid.16750.35) (ISNI:0000 0001 2097 5006)
3 Princeton University, Department of Chemical and Biological Engineering, Princeton, USA (GRID:grid.16750.35) (ISNI:0000 0001 2097 5006); Princeton University, Andlinger Center for Energy and the Environment, Princeton, USA (GRID:grid.16750.35) (ISNI:0000 0001 2097 5006)




