X-RAY-DIFFRACTION STUDY OF DI-LIGATED AND TETRA-LIGATED T-STATE HEMOGLOBIN FROM HIGH SALT CRYSTALS

被引:47
作者
ABRAHAM, DJ
PEASCOE, RA
RANDAD, RS
PANIKKER, J
机构
[1] Department of Medical Chemistry Medical College of Virginia, Virginia Commonwealth University Richmond
关键词
X-RAY STRUCTURE; T-STATE; CRYSTAL STRUCTURE; ALLOSTERIC EFFECTOR; HEMOGLOBIN ALLOSTERIC MECHANISMS;
D O I
10.1016/0022-2836(92)90902-V
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
X-ray diffraction difference electron density maps at 3 Å resolution obtained from di and tetra-ligated T-state hemoglobin (Hb) crystals are reported. Crystals isomorphous with native deoxyhemoglobin were obtained from ammonium sulfate solutions incubated with the synthetic allosteric effector RSR-56. RSR-56 binds at two symmetry-related Hb central water cavity sites and each molecule has major interactions with three different subunit side-chains; one effector with Arg141α2 HC3, Lys99α1 G6 and Asn108β1 and the other with the symmetry related residues, Arg141α1 Lys99α2 and Asn108β2. Crystals mounted in a nitrogen filled glove box were di-ligated as previously found with polyethyleneglycol Hb crystals. Crystals mounted in air under a layer of mother liquor were bright red and showed all four heme groups ligated. The difference electron density from the di-ligated crystals showed atomic movements to be restricted to the immediate neighborhood of the heme groups and the allosteric effector. By contrast, the tetra-ligated structure showed extended difference electron density near amino acid residues around both α and β heme groups and along the α1 β2 interface. Ligation of the β heme group appears to magnify the difference density around the α heme groups. There is no evidence of breakage of the Bohr salt bridge, His146β HC3 → Asp94β FG1, in the crystal. The observed difference electron density maps may help to clarify the way the allosteric mechanism is triggered. © 1992.
引用
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页码:480 / 492
页数:13
相关论文
共 34 条
  • [1] ACKERS GK, 1987, ANNU REV BIOPHYS BIO, V16, P583
  • [2] MOLECULAR CODE FOR COOPERATIVITY IN HEMOGLOBIN
    ACKERS, GK
    DOYLE, ML
    MYERS, D
    DAUGHERTY, MA
    [J]. SCIENCE, 1992, 255 (5040) : 54 - 63
  • [3] ATONINI A, 1971, HEMOGLOBIN MYOGLOBIN
  • [4] Baldwin J.M., 1975, Progress Biophys Molec Biol, V29, P225
  • [5] BALDWIN JM, 1979, J MOL BIOL, V129, P183
  • [6] BONDING OF MOLECULAR-OXYGEN TO T-STATE HUMAN-HEMOGLOBIN
    BRZOZOWSKI, A
    DEREWENDA, Z
    DODSON, E
    DODSON, G
    GRABOWSKI, M
    LIDDINGTON, R
    SKARZYNSKI, T
    VALLELY, D
    [J]. NATURE, 1984, 307 (5946) : 74 - 76
  • [7] AMINO-AROMATIC INTERACTIONS IN PROTEINS
    BURLEY, SK
    PETSKO, GA
    [J]. FEBS LETTERS, 1986, 203 (02) : 139 - 143
  • [8] CHATTERJEE R, 1986, J BIOL CHEM, V261, P9929
  • [9] THE CRYSTAL-STRUCTURE OF HUMAN DEOXYHEMOGLOBIN AT 1.74A RESOLUTION
    FERMI, G
    PERUTZ, MF
    SHAANAN, B
    FOURME, R
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1984, 175 (02) : 159 - 174
  • [10] Haurowitz F., 1938, Z PHYSIOL CHEMIE, V254, P266