Mechanism and energetics of green fluorescent protein chromophore synthesis revealed by trapped intermediate structures
- 14 October 2003
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 100 (21) , 12111-12116
- https://doi.org/10.1073/pnas.2133463100
Abstract
Green fluorescent protein has revolutionized cell labeling and molecular tagging, yet the driving force and mechanism for its spontaneous fluorophore synthesis are not established. Here we discover mutations that substantially slow the rate but not the yield of this posttranslational modification, determine structures of the trapped precyclization intermediate and oxidized postcyclization states, and identify unanticipated features critical to chromophore maturation. The protein architecture contains a dramatic approximately 80 degrees bend in the central helix, which focuses distortions at G67 to promote ring formation from amino acids S65, Y66, and G67. Significantly, these distortions eliminate potential helical hydrogen bonds that would otherwise have to be broken at an energetic cost during peptide cyclization and force the G67 nitrogen and S65 carbonyl oxygen atoms within van der Waals contact in preparation for covalent bond formation. Further, we determine that under aerobic, but not anaerobic, conditions the Gly-Gly-Gly chromophore sequence cyclizes and incorporates an oxygen atom. These results lead directly to a conjugation-trapping mechanism, in which a thermodynamically unfavorable cyclization reaction is coupled to an electronic conjugation trapping step, to drive chromophore maturation. Moreover, we propose primarily electrostatic roles for the R96 and E222 side chains in chromophore formation and suggest that the T62 carbonyl oxygen is the base that initiates the dehydration reaction. Our molecular mechanism provides the basis for understanding and eventually controlling chromophore creation.Keywords
This publication has 45 references indexed in Scilit:
- Human glutathione transferase A4-4 crystal structures and mutagenesis reveal the basis of high catalytic efficiency with toxic lipid peroxidation productsJournal of Molecular Biology, 1999
- XtalView/Xfit—A Versatile Program for Manipulating Atomic Coordinates and Electron DensityJournal of Structural Biology, 1999
- THE GREEN FLUORESCENT PROTEINAnnual Review of Biochemistry, 1998
- A Computational Analysis of the Unique Protein-Induced Tight Turn That Results in Posttranslational Chromophore Formation in Green Fluorescent ProteinJournal of the American Chemical Society, 1998
- Chromophore Formation in Green Fluorescent ProteinBiochemistry, 1997
- [20] Processing of X-ray diffraction data collected in oscillation modePublished by Elsevier ,1997
- Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transferCurrent Biology, 1996
- Green‐fluorescent protein mutants with altered fluorescence excitation spectraFEBS Letters, 1995
- Green Fluorescent Protein as a Marker for Gene ExpressionScience, 1994
- Free R value: a novel statistical quantity for assessing the accuracy of crystal structuresNature, 1992