Ligand preference and orientation in b- and c-type heme-binding proteins

被引:40
|
作者
Fufezan, Christian [1 ]
Zhang, Jun [1 ]
Gunner, M. R. [1 ]
机构
[1] CUNY City Coll, Dept Phys, New York, NY 10031 USA
关键词
heme; pdb survey; ligand orientation; continuum electrostatics; molecular mechanics;
D O I
10.1002/prot.22097
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Hemes are often incorporated into designed proteins. The importance of the heme ligand type and its orientation is still a matter of debate. Here, heme ligands and ligand orientation were investigated using a nonredundant (87 structures) and a redundant (1503 structures) set of structures to compare and contrast design features of natural b- and c-type heme-binding proteins. Histidine is the most common ligand. Marked differences in ligation motifs between b- and c-type hemes are higher occurrence of His-Met in c-type heme binding motifs (16.4% vs. 1.4%) and higher occurrence of exchangeable, small molecules in b-type heme binding motifs (67.6% vs. 9.9%). Histidine ligands that are part of the c-type CXXCH heme-binding motif show a distinct asymmetric distribution of orientation. They tend to point between either the heme propionates or between the NA and NB heme nitrogens. Molecular mechanics calculations show that this asymmetry is due to the bonded constraints of the covalent attachment between the heme and the protein. In contrast, the orientations of b-type hemes histidine ligands are found evenly distributed with no preference. Observed histidine heme ligand orientations show no dominating influence of electrostatic interactions between the heme propionates and the ligands. Furthermore, ligands in bis-His hemes are found more frequently perpendicular rather than parallel to each other. These correlations support energetic constraints on ligands that can be used in designing proteins.
引用
收藏
页码:690 / 704
页数:15
相关论文
共 50 条
  • [31] Ligand Binding to Heme Proteins: A Comparison of Cytochrome c Variants with Globins
    Nienhaus, Karin
    Zosel, Franziska
    Nienhaus, G. Ulrich
    JOURNAL OF PHYSICAL CHEMISTRY B, 2012, 116 (40): : 12180 - 12188
  • [32] LOCATION OF HEME-BINDING SITES IN THE MITOCHONDRIAL CYTOCHROME-B
    SARASTE, M
    FEBS LETTERS, 1984, 166 (02): : 367 - 372
  • [34] Investigations of Raman coherence and ligand binding in heme and heme proteins
    Champion, Paul M.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2007, 233
  • [35] Mitochondrial heme distribution: Impact of heterologous heme-binding proteins in mitochondrial sub compartments to probe heme transport
    Jeong, M.
    Winge, D.
    MOLECULAR BIOLOGY OF THE CELL, 2016, 27
  • [36] On the axial ligand orientation of heme proteins and model compounds
    Kalodimos, CG
    Gerothanassis, IP
    Troganis, A
    Momenteau, M
    SPECTROSCOPY OF BIOLOGICAL MOLECULES: MODERN TRENDS, 1997, : 77 - 78
  • [37] DYNAMICS OF LIGAND-BINDING TO HEME PROTEINS
    FRAUENFELDER, H
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1975, 20 (03): : 280 - 280
  • [38] Conformational relaxation and ligand binding in heme proteins
    Nienhaus, GU
    Chu, K
    McMahon, B
    Muller, JD
    BIOLOGICAL STRUCTURE AND DYNAMICS, VOL 1, 1996, : 281 - 296
  • [39] TUNNELING IN LIGAND-BINDING TO HEME PROTEINS
    ALBERDING, N
    AUSTIN, RH
    BEESON, KW
    CHAN, SS
    EISENSTEIN, L
    FRAUENFELDER, H
    NORDLUND, TM
    SCIENCE, 1976, 192 (4243) : 1002 - 1004
  • [40] A noncanonical heme oxygenase specific for the degradation of c-type heme
    Li, Shuxin
    Isiorho, Eta A.
    Owens, Victoria L.
    Donnan, Patrick H.
    Odili, Chidinma L.
    Mansoorabadi, Steven O.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2021, 296 (296)