ZINC AND MAGNESIUM SUBSTITUTION IN HEMOGLOBIN - CYCLIC ELECTRON-TRANSFER WITHIN MIXED-METAL HYBRIDS AND CRYSTAL-STRUCTURE OF MGHB

被引:18
作者
KUILA, D
NATAN, MJ
ROGERS, P
GINGRICH, DJ
BAXTER, WW
ARNONE, A
HOFFMAN, BM
机构
[1] NORTHWESTERN UNIV, DEPT CHEM, 2145 SHERIDAN RD, EVANSTON, IL 60208 USA
[2] UNIV IOWA, DEPT BIOCHEM, IOWA CITY, IA 52242 USA
关键词
D O I
10.1021/ja00017a024
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Studies of long-range electron transfer within mixed-metal hemoglobin (Hb) hybrids [alpha-2(FeP), beta-2(MP)] (M = Mg, Zn; P - protoporphyrin IX) are reported, along with the X-ray crystal structure of magnesium-substituted hemoglobin (MgHb). MgHb adopts the quaternary structure of deoxyHb, and replacement of Fe by Mg causes negligible structural changes supporting earlier inferences that electron transfer (ET) in these hybrids occurs between redox centers held at fixed and crystallographically known distance and orientation. Upon flash photolysis of the [MP, Fe3+(H2O)P] hybrids, the charge-separated intermediate [(MP)+, Fe2+P] (1) is formed by a photoinitiated 3(MP) --> Fe3+P intramolecular electron-transfer process with rate constant k(t) and returns to the ground state by a Fe2+P --> (MP)+ thermal electron transfer with rate constant k(b). By use of the transient absorption technique, we have measured k(t) and k(b) for M = Mg and Zn as a function of temperature between 0 and 25-degrees-C. The rate constant, k(t) = 35 (8) s-1, for Mg at room temperature is significantly lower than that of Zn, k(t) = 85 (15) s-1, although the driving force is greater in the former by about 100 mV. The charge recombination rate, k(b), within [Zn, Fe] is 350 (35) s-1 compared to that of 155 (15) s-1 for [Mg, Fe]. The inequality, k(b,t)Zn not-equal k(b,t)Mg, rules out rate-limiting conformational ''gating'' for photoinitiated and thermally activated electron-transfer processes, and further indicates that in both cases ET is direct. Comparisons among the rate constants indicate that the electronic-coupling matrix element between redox sites, (H(AB)02, may be slightly (roughly 2-fold) greater for M = Zn than for M = Mg.
引用
收藏
页码:6520 / 6526
页数:7
相关论文
共 42 条
[21]   GATED ELECTRON-TRANSFER - WHEN ARE OBSERVED RATES CONTROLLED BY CONFORMATIONAL INTERCONVERSION [J].
HOFFMAN, BM ;
RATNER, MA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1987, 109 (21) :6237-6243
[22]  
HOFFMAN BM, 1990, STRUCT BONDING BERLI, V75, P1
[23]   FORMATION OF PORPHYRIN-PI CATION RADICAL IN ZINC-SUBSTITUTED HORSERADISH-PEROXIDASE [J].
KANEKO, Y ;
TAMURA, M ;
YAMAZAKI, I .
BIOCHEMISTRY, 1980, 19 (25) :5795-5799
[24]   TEMPERATURE-INDEPENDENT ELECTRON-TRANSFER IN MIXED-METAL HEMOGLOBIN HYBRIDS [J].
KUILA, D ;
BAXTER, WW ;
NATAN, MJ ;
HOFFMAN, BM .
JOURNAL OF PHYSICAL CHEMISTRY, 1991, 95 (01) :1-3
[25]   REGULATION OF INTERPROTEIN ELECTRON-TRANSFER BY RESIDUE-82 OF YEAST CYTOCHROME-C [J].
LIANG, N ;
MAUK, AG ;
PIELAK, GJ ;
JOHNSON, JA ;
SMITH, M ;
HOFFMAN, BM .
SCIENCE, 1988, 240 (4850) :311-313
[26]   ELECTRON TRANSFERS IN CHEMISTRY AND BIOLOGY [J].
MARCUS, RA ;
SUTIN, N .
BIOCHIMICA ET BIOPHYSICA ACTA, 1985, 811 (03) :265-322
[27]   CHARACTERIZATION OF LONG-RANGE ELECTRON-TRANSFER IN MIXED-METAL [ZINC,IRON] HYBRID HEMOGLOBINS [J].
MCGOURTY, JL ;
PETERSONKENNEDY, SE ;
RUO, WY ;
HOFFMAN, BM .
BIOCHEMISTRY, 1987, 26 (25) :8302-8312
[28]   LONG-DISTANCE ELECTRON-TRANSFER IN PROTEINS AND MODEL SYSTEMS [J].
MCLENDON, G .
ACCOUNTS OF CHEMICAL RESEARCH, 1988, 21 (04) :160-167
[29]   LONG-RANGE (FE-2+(HEME) -] (M(PORPHYRIN))+) ELECTRON-TRANSFER WITHIN [M, FE] (M = MG, ZN) HEMOGLOBIN HYBRIDS [J].
NATAN, MJ ;
HOFFMAN, BM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1989, 111 (16) :6468-6470
[30]   MODULATION OF INTERPROTEIN ELECTRON-TRANSFER ENERGETICS BY HEME-LIGAND VARIATION [J].
NATAN, MJ ;
KUILA, D ;
BAXTER, WW ;
KING, BC ;
HAWKRIDGE, FM ;
HOFFMAN, BM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1990, 112 (10) :4081-4082