IDENTIFICATION OF THE EPR-ACTIVE IRON NITROSYL COMPLEXES IN MAMMALIAN FERRITINS

被引:115
作者
LEE, MH
AROSIO, P
COZZI, A
CHASTEEN, ND
机构
[1] UNIV MILAN, SAN RAFFAELE SCI INST, DIBIT, VIA OLGETTINA 60, I-20132 MILAN, ITALY
[2] UNIV MILAN, DEPT BIOMED SCI & TECHNOL, I-20132 MILAN, ITALY
[3] UNIV NEW HAMPSHIRE, DEPT CHEM, DURHAM, NH 03824 USA
关键词
D O I
10.1021/bi00178a026
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
This study was undertaken to characterize the nitric oxide complexes of mammalian ferritin and their EPR properties to gain a better understanding of the interaction of NO with non-heme iron proteins with in the cell. Measurements were made with horse spleen apo-and holoferritins, with chemically modified proteins, and with recombinant human H-chain apoferritin and its site-directed mutants. Three types of EPR signals (A, B, and C) have been identified and attributed to iron-nitrosyl complexes at imidazole groups of histidine, thiol groups of cysteine, and carboxylate groups of aspartate and glutamate, respectively. The C-type axial spectrum has features at g(perpendicular-to)' = 4 and g(parallel-to)' = 2 characteristic of a paramagnetic Fe3+-NO- complex with total spin S = 3/2 and probably arises from nonspecific binding to carboxylate groups on the protein. The S = 1/2 axial B-type signal (g(perpendicular-to)' = 2.033 and g(parallel-to)' = 2.014) is formed at Cys-130 (human H-chain sequence numbering). His-128 and possibly His-118 are sites of formation of the rhombic S = 1/2 A-type complex (g(x)' = 2.055, g(y)' = 2.033, and g(z)' = 2.015); the former residue perhaps plays a role in the conformational stability of the protein as well as in iron binding. The data reveal that the residues Cys-130 and His-128 in the vicinity of 3-fold channels leading to the interior of the protein shell are important in iron-nitrosyl complex formation in mammalian ferritins.
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页码:3679 / 3687
页数:9
相关论文
共 78 条
  • [1] EPR SIGNAL INTENSITY AND POWDER SHAPES - RE-EXAMINATION
    AASA, R
    VANNGARD, T
    [J]. JOURNAL OF MAGNETIC RESONANCE, 1975, 19 (03) : 308 - 315
  • [2] ARCIERO DM, 1983, J BIOL CHEM, V258, P4981
  • [3] ARCIERO DM, 1985, J BIOL CHEM, V260, P4035
  • [4] AROSIO P, 1978, J BIOL CHEM, V253, P4451
  • [5] ELECTRON-DENSITY MAP OF APOFERRITIN AT 2.8-A RESOLUTION
    BANYARD, SH
    STAMMERS, DK
    HARRISON, PM
    [J]. NATURE, 1978, 271 (5642) : 282 - 284
  • [6] MOSSBAUER INVESTIGATION OF THE COFACTOR IRON OF PUTIDAMONOOXIN
    BILL, E
    BERNHARDT, FH
    TRAUTWEIN, AX
    WINKLER, H
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1985, 147 (01): : 177 - 182
  • [7] NITRIC OXIDE - NITROGEN(II) OXIDE
    BLANCHARD, AA
    [J]. INORGANIC SYNTHESES, 1946, 2 : 126 - 128
  • [8] BOYD D, 1985, J BIOL CHEM, V260, P1755
  • [9] ELECTRON SPIN RESONANCE OF IRON-NITRIC OXIDE COMPLEXES . IRON-NITROSYL-HALIDE COMPOUNDS
    BURLAMACCHI, L
    MARTINI, G
    TIEZZI, E
    [J]. INORGANIC CHEMISTRY, 1969, 8 (09) : 2021 - +
  • [10] ELECTRON-PARAMAGNETIC RESONANCE STUDY OF THE REACTIONS OF TETRATHIOMOLYBDATE WITH ROUSSIN SALTS AND ESTERS, AND WITH SOME RELATED IRON NITROSYLS
    BUTLER, AR
    GLIDEWELL, C
    JOHNSON, IL
    WALTON, JC
    [J]. POLYHEDRON, 1987, 6 (12) : 2085 - 2090