Examples of high-frequency EPR studies in bioinorganic chemistry

被引:64
作者
Andersson, KK
Schmidt, PP
Katterle, B
Strand, KR
Palmer, AE
Lee, SK
Solomon, EI
Gräslund, A
Barra, AL
机构
[1] Univ Oslo, Dept Biochem, N-0316 Oslo, Norway
[2] Stanford Univ, Dept Chem, Stanford, CA 94305 USA
[3] Stockholm Univ, Dept Biochem & Biophys, S-10691 Stockholm, Sweden
[4] MPI, CNRS, High Field Magnet Lab, F-38042 Grenoble, France
来源
JOURNAL OF BIOLOGICAL INORGANIC CHEMISTRY | 2003年 / 8卷 / 03期
关键词
high-field EPR; zero-field splitting; iron proteins; copper proteins; heme proteins;
D O I
10.1007/s00775-002-0429-0
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
Low-temperature EPR spectroscopy with frequencies between 95 and 345 GHz and magnetic fields up to 12 T has been used to study metal sites in proteins or inorganic complexes and free radicals. The high-field EPR method was used to resolve g-value anisotropy by separating it from overlapping hyperfine couplings. The presence of hydrogen bonding interactions to the tyrosyl radical oxygens in ribonucleotide reductases were detected. At 285 GHz the g-value anisotropy from the rhombic type 2 Cu(II) signal in the enzyme laccase has its g-value anisotropy clearly resolved from slightly different overlapping axial species. Simple metal site systems with S > 1/2 undergo a zero-field splitting, which can be described by the spin Hamiltonian H-s = betaSgB + D[S-z(2) - S(S + 1)/3 + (E/D)(S-x(2) - S-y(2))]. From high-frequency EPR, the D values that are small compared to the frequency (high-field limit) can be determined directly by measuring the distance of the outermost signal to the center of the spectrum, which corresponds to (2S-1)* \D\. For example, D values of 0.8 and 0.3 cm(-1) are observed for S = 5/2 Fe(III)-EDTA and transferrin, respectively. When D values are larger compared to the frequency and in the case of half-integer spin systems, they can be obtained from the frequency dependence of the shifts of g(eff), as observed for myoglobin in the presence (D = 5 cm(-1)) or absence (D = 9.5 cm(-1)) of fluoride. The 285 and 345 GHz spectra of the Fe(II)-NO-EDTA complex show that it is best described as a S = 3/2 system with D = 11.5 cm(-1), E = 0.1 cm(-1), and g(x) = g(y) = g(z) = 2.0. Finally, the effects of HF-EPR on X-band EPR silent states and weak magnetic interactions are demonstrated.
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页码:235 / 247
页数:13
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共 105 条
[61]   High-field EPR study of carotenoid and chlorophyll cation radicals in photosystem II [J].
Lakshmi, KV ;
Reifler, MJ ;
Brudvig, GW ;
Poluektov, OG ;
Wagner, AM ;
Thurnauer, MC .
JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (45) :10445-10448
[62]   High-field EPR detection of a disulfide radical anion in the reduction of cytidine 5′-diphosphate by the E441Q R1 mutant of Escherichia coli ribonucleotide reductase [J].
Lawrence, CC ;
Bennati, M ;
Obias, HV ;
Bar, G ;
Griffin, RG ;
Stubbe, J .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (16) :8979-8984
[63]   Advanced EPR spectroscopy on electron transfer processes in photosynthesis and biomimetic model systems [J].
Levanon, H ;
Mobius, K .
ANNUAL REVIEW OF BIOPHYSICS AND BIOMOLECULAR STRUCTURE, 1997, 26 :495-540
[64]   Structure of the P700+ A1- radical pair intermediate in photosystem I by high time resolution multifrequency electron paramagnetic resonance:: Analysis of quantum beat oscillations [J].
Link, G ;
Berthold, T ;
Bechtold, M ;
Weidner, JU ;
Ohmes, E ;
Tang, J ;
Poluektov, O ;
Utschig, L ;
Schlesselman, SL ;
Thurnauer, MC ;
Kothe, G .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2001, 123 (18) :4211-4222
[65]   The tyrosyl free radical of recombinant ribonucleotide reductase from Mycobacterium tuberculosis is located in a rigid hydrophobic pocket [J].
Liu, A ;
Pötsch, S ;
Davydov, A ;
Barra, AL ;
Rubin, H ;
Gräslund, A .
BIOCHEMISTRY, 1998, 37 (46) :16369-16377
[66]   Heterogeneity of the local electrostatic environment of the tyrosyl radical in Mycobacterium tuberculosis ribonucleotide reductase observed by high-field electron paramagnetic resonance [J].
Liu, AM ;
Barra, AL ;
Rubin, H ;
Lu, GZ ;
Gräslund, A .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2000, 122 (09) :1974-1978
[67]   The primary and secondary accepters in bacterial photosynthesis III.: Characterization of the quinone radicals QA-• and QB-• by EPR and ENDOR [J].
Lubitz, W ;
Feher, G .
APPLIED MAGNETIC RESONANCE, 1999, 17 (01) :1-48
[68]   A 250-GHZ ESR STUDY OF HIGHLY DISTORTED MANGANESE COMPLEXES [J].
LYNCH, WB ;
BOORSE, RS ;
FREED, JH .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1993, 115 (23) :10909-10915
[69]   W-band ENDOR investigation of the manganese-binding site of concanavalin A: Determination of proton hyperfine couplings and their signs [J].
Manikandan, P ;
Carmieli, R ;
Shane, T ;
Kalb, AJ ;
Goldfarb, D .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2000, 122 (14) :3488-3494
[70]   Structure of copper(II) -histidine based complexes in frozen aqueous solutions as determined from high-field pulsed electron nuclear double resonance [J].
Manikandan, P ;
Epel, B ;
Goldfarb, D .
INORGANIC CHEMISTRY, 2001, 40 (04) :781-787