首页> 外文期刊>Journal of the American Chemical Society >Selective Chemical Shift Assignment of B800 and B850 Bacteriochlorophylls in Uniformly [~13C,~15N]-Labeled Light-Harvesting Complexes by Solid-State NMR Spectroscopy at Ultra-High Magnetic Field
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Selective Chemical Shift Assignment of B800 and B850 Bacteriochlorophylls in Uniformly [~13C,~15N]-Labeled Light-Harvesting Complexes by Solid-State NMR Spectroscopy at Ultra-High Magnetic Field

机译:固态NMR光谱法在超高磁场下均匀地[〜13C,〜15N]标记的光捕集络合物中B800和B850细菌叶绿素的选择性化学位移分配

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摘要

The electronic ground states of the bacteriochlorophyll a type B800 and type B850 in the light-harvesting 2 complex of Rhodopseudomonas acidophila strain 10050 have been characterized by magic angle spinning(MAS)dipolar ~13C-~13C correlation NMR spectroscopy.Uniformly [~13C,~15N] enriched light-harvesting 2(LH_2)complexes were prepared biosynthetically,while [~13C,~15N]-B800 LH_2 complexes were obtained after reconstitution of apoprotein with uniformly [~13C,~15N]-enriched bacteriochlorophyll cofactors.Extensive sets of isotropic ~13C NMR chemical shifts were obtained for each bacteriochlorin ring species in the LH_2 protein.~13C isotropic shifts in the protein have been compared to the corresponding shifts of monomeric BChl a dissolved in acetone-d_6.Density functional theory calculations were performed to estimate ring current effects induced by adjacent cofactors.By correction for the ring current shifts,the ~13C shift effects due to the interactions with the protein matrix were resolved.The chemical shift changes provide a clear evidence for a global electronic effect on the B800 and B850 macrocycles,which is attributed to the dielectrics of the protein environment,in contrast with local effects due to interaction with specific amino acid residues.Considerable shifts of -6.2 < DELTAsigma < +5.8 ppm are detected for ~13C nuclei in both the B800 and the B850 bacteriochlorin rings.Because the shift effects for the B800 and B850 are similar,the polarization of the electronic ground states induced by the protein environment is comparable for both cofactors and corresponds with a red shift of ~30 nm relative to the monomeric BChl dissolved in acetone-d_6.The electronic coupling between the B850 cofactors due to macrocycle overlap is the predominant mechanism behind the additional red shift in the B850.
机译:嗜酸红假单胞菌菌株10050的光捕获2络合物中细菌叶绿素a B800型和B850型的电子基态已通过魔角旋转(MAS)双极〜13C-〜13C相关NMR光谱进行了表征。[〜13C,通过生物合成制备了〜15N]富集光的2(LH_2)复合物,而脱辅基蛋白与均匀[〜13C,〜15N]富集的细菌叶绿素辅因子重构了[〜13C,〜15N] -B800 LH_2复合物。对LH_2蛋白质中每个细菌绿素环种类进行了各向同性的〜13C NMR化学位移。已将蛋白质中〜13C的各向同性位移与溶解在丙酮-d_6中的单体BChla的相应位移进行了比较。估计相邻辅因子引起的环电流效应。通过校正环电流位移,可重新获得由于与蛋白质基质相互作用而产生的〜13C位移效应化学位移的变化为B800和B850大环的整体电子效应提供了清晰的证据,这归因于蛋白质环境的电介质,而与特定氨基酸残基相互作用引起的局部效应相反。在B800和B850细菌绿素环中〜13C核中检测到-6.2

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  • 来源
    《Journal of the American Chemical Society》 |2005年第9期|p.3213-3219|共7页
  • 作者单位

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

    Contribution from the Leiden Institute of Chemistry,Gorlaeus Laboratoria,Leiden University,P.O.Box 9502,2300 RA Leiden,The Netherlands,and Division of Biochemistry and Molecular Biology,Institute of Biomedical and Life Sciences,University of Glasgow,;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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  • 入库时间 2022-08-18 03:23:48

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