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酪氨酸自由基和模型肽中肽氮超精细偶合的电子自旋-电子自旋双共振研究。

ESEEM studies of peptide nitrogen hyperfine coupling in tyrosyl radicals and model peptides.

作者信息

McCracken John, Vassiliev Ilya R, Yang En-Che, Range Kevin, Barry Bridgette A

机构信息

Department of Chemistry, Michigan State University, East Lansing, Michigan 48824, USA.

出版信息

J Phys Chem B. 2007 Jun 14;111(23):6586-92. doi: 10.1021/jp071402x. Epub 2007 May 23.

Abstract

Tyrosyl radicals are important in long-range electron transfer in several enzymes, but the protein environmental factors that control midpoint potential and electron transfer rate are not well understood. To develop a more detailed understanding of the effect of protein sequence, we have performed 14N and 15N electron spin echo envelope modulation (ESEEM) measurements on tyrosyl radical, generated either in polycrystalline tyrosinate or in its 15N-labeled isotopomer, by UV photolysis. 14N-ESEEM was also performed on tyrosyl radical generated in tyrosine-containing pentapeptide samples. Simulation of the 14N- and 15N-tyrosyl radical ESEEM measurements yielded no significant isotropic hyperfine splitting to the amine or amide nitrogen; the amplitude of the anisotropic, nitrogen hyperfine coupling (0.21 MHz) was consistent with a dipole-dipole distance of 3.0 A. Density functional theory was used to calculate the isotropic and anisotropic hyperfine couplings to the amino nitrogen in four different tyrosyl radical conformers. Comparison with the simulated data suggested that the lowest energy radical conformer, generated in tyrosine at pH 11, has a 76 degrees Calpha-Cbeta-C1'-C2' ring and a -73 degrees C-Calpha-Cbeta-C1' backbone dihedral angle. In addition, the magnitude, orientation, and asymmetry of the nuclear quadrupole coupling tensor were derived from analysis of the tyrosyl radical 14N-ESEEM. The simulations showed differences in the coupling and orientation of the nuclear quadrupole tensor, when the tyrosinate and pentapeptide samples were compared. These results suggest sequence- or conformation-induced changes in the ionic character of the NH bond in different tyrosine-containing peptides.

摘要

酪氨酰自由基在多种酶的长程电子转移中很重要,但控制中点电位和电子转移速率的蛋白质环境因素尚未得到很好的理解。为了更详细地了解蛋白质序列的影响,我们通过紫外光解对在多晶酪氨酸盐或其15N标记的同位素异构体中产生的酪氨酰自由基进行了14N和15N电子自旋回波包络调制(ESEEM)测量。还对含酪氨酸的五肽样品中产生的酪氨酰自由基进行了14N-ESEEM测量。对14N和15N酪氨酰自由基ESEEM测量的模拟未产生与胺或酰胺氮相关的显著各向同性超精细分裂;各向异性氮超精细耦合的幅度(0.21 MHz)与3.0 Å的偶极-偶极距离一致。密度泛函理论用于计算四种不同酪氨酰自由基构象体中氨基氮的各向同性和各向异性超精细耦合。与模拟数据的比较表明,在pH 11的酪氨酸中产生的能量最低的自由基构象体具有76度的Cα-Cβ-C1'-C2'环和-73度的C-Cα-Cβ-C1'主链二面角。此外,核四极耦合张量的大小、方向和不对称性是通过对酪氨酰自由基14N-ESEEM的分析得出的。模拟结果表明,当比较酪氨酸盐和五肽样品时,核四极张量的耦合和方向存在差异。这些结果表明,不同含酪氨酸肽中NH键的离子特性存在序列或构象诱导的变化。

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