Crystal structure of a domain-swapped photoactivatable sfGFP variant provides evidence for GFP folding pathway.

Stephanie Kesgin-Schaefer, Johannes Heidemann, Anke Puchert, Knut Koelbel, Briony A Yorke, Nils Huse, Arwen R Pearson, Charlotte Uetrecht, Henning Tidow

Journal: The FEBS journal 2020;286(12):2329-2340

PMID: 30817081

Abstract

Photoactivatable fluorescent proteins (PA-FPs) are a powerful non-invasive tool in high-resolution live-cell imaging. They can be converted from an inactive to an active form by light, enabling the spatial and temporal trafficking of proteins and cell dynamics. PA-FPs have been previously generated by mutating selected residues in the chromophore or in its close proximity. A new strategy to generate PA-FPs is the genetic incorporation of unnatural amino acids (UAAs) containing photocaged groups using unique suppressor tRNA/aminoacyl-tRNA synthetase pairs. We set out to develop a photoactivatable GFP variant suitable for time-resolved structural studies. Here, we report the crystal structure of superfolder GFP (sfGFP) containing the UAA ortho-nitrobenzyl-tyrosine (ONBY) at position 66 and its spectroscopic characterization. Surprisingly, the crystal structure (to 2.7 Å resolution) reveals a dimeric domain-swapped arrangement of sfGFP66ONBY with residues 1-142 of one molecule associating with residues 148-234 from another molecule. This unusual domain-swapped structure supports a previously postulated GFP folding pathway that proceeds via an equilibrium intermediate.

© 2019 Federation of European Biochemical Societies.

Address: The Hamburg Centre for Ultrafast Imaging, Germany.; Department of Chemistry, Institute for Biochemistry and Molecular Biology, University of Hamburg, Germany.; Heinrich Pette Institute, Leibniz Institute for Experimental Virology, Hamburg, Germany.; The Hamburg Centre for Ultrafast Imaging, Germany.; Department of Physics, Center for Free-Electron Laser Science, Institute for Nanostructure and Solid State Physics, University of Hamburg, Germany.; Heinrich Pette Institute, Leibniz Institute for Experimental Virology, Hamburg, Germany.; European XFEL GmbH, Schenefeld, Germany.

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