Structural Chemistry of a Green Fluorescent Protein Zn Biosensor
- 15 March 2002
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 124 (14) , 3522-3524
- https://doi.org/10.1021/ja0176954
Abstract
We designed a green fluorescent protein mutant (BFPms1) that preferentially binds Zn(II) (enhancing fluorescence intensity) and Cu(II) (quenching fluorescence) directly to a chromophore ligand that resembles a dipyrrole unit of a porphyrin. Crystallographic structure determination of apo, Zn(II)-bound, and Cu(II)-bound BFPms1 to better than 1.5 Å resolution allowed us to refine metal centers without geometric restraints, to calculate experimental standard uncertainty errors for bond lengths and angles, and to model thermal displacement parameters anisotropically. The BFPms1 Zn(II) site (KD = 50 μM) displays distorted trigonal bipyrimidal geometry, with Zn(II) binding to Glu222, to a water molecule, and tridentate to the chromophore ligand. In contrast, the BFPms1 Cu(II) site (KD = 24 μM) exhibits square planar geometry similar to metalated porphyrins, with Cu(II) binding to the chromophore chelate and Glu222. The apo structure reveals a large electropositive region near the designed metal insertion channel, suggesting a basis for the measured metal cation binding kinetics. The preorganized tridentate ligand is accommodated in both coordination geometries by a 0.4 Å difference between the Zn and Cu positions and by distinct rearrangements of Glu222. The highly accurate metal ligand bond lengths reveal different protonation states for the same oxygen bound to Zn vs Cu, with implications for the observed metal ion specificity. Crystallographic anisotropic thermal factor analysis validates metal ion rigidification of the chromophore in enhancement of fluorescence intensity upon Zn(II) binding. Thus, our high-resolution structures reveal how structure-based design has effectively linked selective metal binding to changes in fluorescent properties. Furthermore, this protein Zn(II) biosensor provides a prototype suitable for further optimization by directed evolution to generate metalloprotein variants with desirable physical or biochemical properties.Keywords
This publication has 14 references indexed in Scilit:
- Design of Bioelectronic Interfaces by Exploiting Hinge-Bending Motions in ProteinsScience, 2001
- Extreme Zinc-Binding Thermodynamics of the Metal Sensor/Regulator Protein, ZntRJournal of the American Chemical Society, 2001
- The de novo design of a rubredoxin‐like fe siteProtein Science, 1998
- THE GREEN FLUORESCENT PROTEINAnnual Review of Biochemistry, 1998
- The Use of Nonneuronal Cells for Gene DeliveryNeurobiology of Disease, 1997
- Crystal Structure and Photodynamic Behavior of the Blue Emission Variant Y66H/Y145F of Green Fluorescent ProteinBiochemistry, 1997
- Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transferCurrent Biology, 1996
- Faster superoxide dismutase mutants designed by enhancing electrostatic guidanceNature, 1992
- Kinetics of metalloporphyrin formation in glacial acetic acidInorganic Chemistry, 1970
- Discriminating behavior of metal ions and ligands with regard to their biological significanceAccounts of Chemical Research, 1970