De NovoDesign of aD2-Symmetrical Protein that Reproduces the Diheme Four-Helix Bundle in Cytochromebc1
- 15 June 2004
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 126 (26) , 8141-8147
- https://doi.org/10.1021/ja039935g
Abstract
An idealized, water-soluble D2-symmetric diheme protein is constructed based on a mathematical parametrization of the backbone coordinates of the transmembrane diheme four-helix bundle in cytochrome bc1. Each heme is coordinated by two His residues from diagonally apposed helices. In the model, the imidazole rings of the His ligands are held in a somewhat unusual perpendicular orientation as found in cytochrome bc1, which is maintained by a second-shell hydrogen bond to a Thr side chain on a neighboring helix. The resulting peptide is unfolded in the apo state but assembles cooperatively upon binding to heme into a well-folded tetramer. Each tetramer binds two hemes with high affinity at low micromolar concentrations. The equilibrium reduction midpoint potential varies between −76 mV and −124 mV vs SHE in the reducing and oxidizing direction, respectively. The EPR spectrum of the ferric complex indicates the presence of a low-spin species, with a gmax value of 3.35 comparable to those obtained for hemes b of cytochrome bc1 (3.79 and 3.44). This provides strong support for the designed perpendicular orientation of the imidazole ligands. Moreover, NMR spectra show that the protein exists in solution in a unique conformation and is amenable to structural studies. This protein may provide a useful scaffold for determining how second-shell ligands affect the redox potential of the heme cofactor.Keywords
This publication has 43 references indexed in Scilit:
- Characterization of de novo synthesized four-helix bundle proteins with metalloporphyrin cofactorsPhysical Chemistry Chemical Physics, 2001
- Dn-symmetrical tertiary templates for the design of tubular proteins11Edited by J. ThorntonJournal of Molecular Biology, 2001
- Heme Redox Potential Control in de Novo Designed Four-α-Helix Bundle ProteinsBiochemistry, 2000
- Hydrophobic Interactions in Metalloporphyrin−Peptide ComplexesInorganic Chemistry, 2000
- Side-chain and backbone flexibility in protein core designJournal of Molecular Biology, 1999
- High-Resolution Protein Design with Backbone FreedomScience, 1998
- Isolation and Characterization of a Two-Subunit Cytochrome b−c1 Subcomplex from Rhodobacter capsulatus and Reconstitution of Its Ubihydroquinone Oxidation (Qo) Site with Purified Fe-S Protein SubunitBiochemistry, 1998
- 1H, 13C and 15N chemical shift referencing in biomolecular NMRJournal of Biomolecular NMR, 1995
- Design of a heme-binding four-helix bundleJournal of the American Chemical Society, 1994
- Carbon-hydrogen insertions in the reactions of Fischer carbene complexes with ketene acetalsJournal of the American Chemical Society, 1992