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1.
Inorg Chem ; 57(22): 14269-14279, 2018 Nov 19.
Article in English | MEDLINE | ID: mdl-30387349

ABSTRACT

In the L29F variant of myoglobin (Mb), the coordination of oxygen (O2) to the heme Fe atom is stabilized by favorable electrostatic interactions between the polar Fe-O2 moiety and the multipole of the phenyl ring of the Phe29 side chain (Phe29 interaction), in addition to the well-known hydrogen bond (H-bond) between the Fe-bound O2 and the 64th residue (distal H-bond; Carver, T. E.; Brantley, R. E., Jr.; Singleton, E. W.; Arduini, R. M.; Quillin, M. L.; Phillips, G. N., Jr.; Olson, J. S. J. Biol. Chem. 1992, 267, 14443-14450). The O2 and carbon monoxide (CO) binding properties and autoxidation of the L29F/H64L and L29F/H64Q variants reconstituted with a series of chemically modified heme cofactors were analyzed and then compared with those of native Mb, and the L29F, H64Q, and H64L variants similarly reconstituted with the chemically modified heme cofactors in order to elucidate the relationship between the Phe29 interaction and the distal H-bond that critically contributes to stabilization of Fe-bound O2. We found that the Phe29 interaction and distal H-bond act cooperatively to stabilize the Fe-bound O2 in such a manner that the Phe29 interaction strengthens with increasing strength of the distal H-bond. Comparison of the functional properties between the L29F and H64L variants indicated that the synergistic effect of the two interactions decreases the O2 dissociation and autoxidation rate constants of the protein by factors of ∼1/2000 and ∼1/400, respectively. Although the CO binding properties of the proteins were not greatly affected by the distal polar interactions, their synergistic effects were clearly and sharply manifested in the vibrational frequencies of the Fe-bound C-O stretching of the proteins.


Subject(s)
Carbon Monoxide/metabolism , Iron/chemistry , Myoglobin/metabolism , Oxygen/metabolism , Animals , Carbon Monoxide/chemistry , Heme/chemistry , Hydrogen Bonding , Kinetics , Ligands , Mutation , Myoglobin/chemistry , Myoglobin/genetics , Oxidation-Reduction , Oxygen/chemistry , Protein Binding , Sperm Whale , Static Electricity
2.
Biochemistry ; 56(34): 4500-4508, 2017 08 29.
Article in English | MEDLINE | ID: mdl-28758387

ABSTRACT

The orientation of a CF3-substituted heme in sperm whale myoglobin and L29F, H64L, L29F/H64Q, and H64Q variant proteins has been investigated using 19F NMR spectroscopy to elucidate structural factors responsible for the thermodynamic stability of the heme orientational disorder, i.e., the presence of two heme orientations differing by a 180° rotation about the 5-15 meso axis, with respect to the protein moiety. Crystal structure of the met-aquo form of the wild-type myoglobin reconstituted with 13,17-bis(2-carboxylatoethyl)-3,8-diethyl-2,12,18-trimethyl-7-trifluoromethylporphyrinatoiron(III), determined at resolution of 1.25 Å, revealed the presence of the heme orientational disorder. Alterations of the salt bridge between the heme 13-propionate and Arg45(CD3) side chains due to the mutations resulted in equilibrium constants of the heme orientational disorder ranging between 0.42 and 1.4. Thus, the heme orientational disorder is affected by the salt bridge associated with the heme 13-propionate side chain, confirming the importance of the salt bridge in the heme binding to the protein.


Subject(s)
Heme/chemistry , Mutation, Missense , Myoglobin/chemistry , Amino Acid Substitution , Animals , Binding Sites , Crystallography, X-Ray , Heme/metabolism , Myoglobin/genetics , Myoglobin/metabolism , Sperm Whale
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