The O2, CO, and alkyl isocyanide-binding properties of a variety of vertebrate and invertebrate heme proteins have been compared in detail to those of protoheme mono-3-(1-imidazoyl)-propylamide monomethyl ester in aqueous suspensions of soap micelles. The proteins examined include: cytochrome P-450cam from Pseudomonas putida, beef heart cytochrome c oxidase, yeast cytochrome c peroxidase, alpha and beta subunits of human hemoglobin, sheep hemoglobin, carp hemoglobin, sperm whale myoglobin, horse heart myoglobin, a monomeric hemoglobin from Glycera dibranchiata, erythrocruorin from Chironomusthummii, soybean leghemoglobin, and several hemoglobins that lack distal histidines. The smallest bimolecular rates were observed for cytochrome P-450 containing bound camphor, cytochrome c oxidase, and cytochrome c peroxidase. In the case of P-450, the extremely low isonitrile binding rates (approximately 1 M-1 S-1 at 20 degrees C) are due to steric exclusion by bound camphor molecules. For the oxidase and peroxidase, inhibition of CO and isonitrile binding appears to be due to the polar nature of the active sites. In the cases of animal hemoglobins and myoglobins, the sixth coordination positions appear to be designed to accommodate diatomic molecules with no steric hindrance by distal protein residues. Protein resistance to the diffusion of CO and O2 does not limit the observed association rate constants. In contrast, ligands containing three or more atoms are sterically hindered both in their final bound positions and during diffusion to the active site. The magnitude of this hindrance (greater than or equal to 2 kcal/mol) exhibits a complex dependence on ligand size and shape. The most important protein residue appears to be His E7. In addition to restricting the size of the sixth coordination position, the distal histidine is also capable of forming a hydrogen bond with bound oxygen molecules. The strength of this hydrogen bond was estimated to be -2 and -1 kcal/mol for mammalian myoglobins and hemoglobins, respectively, and accounts for the smaller CO/O2 partition constants (M values) observed for these proteins in comparison to the constants observed for pentacoordinate model heme compounds.
Kinetik und Gleichgewichtsparameter der Bindung von l 1 Alkylisocyaniden R‐NC (R: ‐(CH2)"‐CH3 mit n: 0‐5, ferner R: ‐iPr, ‐iBu, ‐tBu, ‐sBu, ‐CH2‐Ph und Cyclohexyl) an Protohäm‐mono‐3‐(1‐imidazoyl)‐propylamid‐monomethylester in Benzol und in wäßriger 2proz. Myristyltrimethylammoniumbromid‐Lösung bei 20°C wurden untersucht.
AbstractKinetik und Gleichgewichtsparameter der Bindung von l 1 Alkylisocyaniden R‐NC (R: ‐(CH2)"‐CH3 mit n: 0‐5, ferner R: ‐iPr, ‐iBu, ‐tBu, ‐sBu, ‐CH2‐Ph und Cyclohexyl) an Protohäm‐mono‐3‐(1‐imidazoyl)‐propylamid‐monomethylester in Benzol und in wäßriger 2proz. Myristyltrimethylammoniumbromid‐Lösung bei 20°C wurden untersucht.
Steric interactions between bound ligand molecules and the valine E11 methyl groups of human hemoglobin and sperm whale myoglobin have been examined directly by high resolution NMR techniques. The methyl proton resonances of this amino acid are shifted markedly upfield and away from the bulk of the protein resonances by the shielding effect of circulating pi electrons in the porphyrin ring. We have monitored the valine resonance in the presence of CO and a series of isonitriles and found considerable shifts in its position, both between the various protein complexes and among the different liganded states. The ring current shifts of the gamma 1-methyl group of Val E11 in the CO forms of isolated alpha and beta chains and myoglobin are -2.70, -2.91, and -3.30 ppm, respectively. In all the proteins, these positions show little change in going from bound CO to bound methyl and ethyl isocyanide. In alpha subunits and myoglobin, n-propyl and n-butyl isocyanide binding produces marked decreases in the magnitude of these shifts, indicating that the valine residue has been forced away from the center of ring by the presence of these large ligand molecules. In the case of beta subunits, however, only tert-butyl isocyanide produces a marked decrease (from -2.91 to -1.99 ppm) in the ring current shift of the valine methyl protons. New peaks were observed in the isonitrile-protein spectra and identified as ligand proton resonances by comparing the spectra of normal and totally deuterated isonitrile complexes. The magnitudes of the ring current shifts for the terminal methyl protons of ethyl isocyanide suggest a linear geometry for the Fe equal to C equal to N - C bonds in beta chains and a bent geometry for alpha chains. The bent geometry in alpha subunits appears to be dictated by the position of the Val E11 methyl group which is located further up from the heme plane but closer to the heme center than the corresponding position of the beta subunit residue. The free energy changes for ethyl isocyanide binding to the two chains are nearly identical, suggesting that the linear and bent geometries are energetically equivalent. Myoglobin ethyl isocyanide complexes exhibit ligand ring current shifts intermediate to those observed for the hemoglobin subunits. Assignment of resonances and positions to the alkyl protons of the longer isonitriles is more difficult.