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蛋白腔在光敏色素色蛋白组装和双键异构化中的作用:与模型化合物的比较。

Role of the protein cavity in phytochrome chromoprotein assembly and double-bond isomerization: a comparison with model compounds.

机构信息

Leiden Institute of Chemistry, Leiden University, Leiden, The Netherlands.

出版信息

Photochem Photobiol. 2010 Jul-Aug;86(4):856-61. doi: 10.1111/j.1751-1097.2010.00740.x. Epub 2010 May 10.

Abstract

Difference patterns of (13)C NMR chemicals shifts for the protonation of a free model compound in organic solution, as reported in the literature (M. Stanek, K. Grubmayr [1998] Chem. Eur. J.4, 1653-1659), were compared with changes in the protonation state occurring during holophytochrome assembly from phycocyanobilin (PCB) and the apoprotein. Both processes induce identical changes in the NMR signals, indicating that the assembly process is linked to protonation of the chromophore, yielding a cationic cofactor in a heterogeneous, quasi-liquid protein environment. The identity of both difference patterns implies that the protonation of a model compound in solution causes a partial stretching of the geometry of the macrocycle as found in the protein. In fact, the similarity of the difference pattern within the bilin family for identical chemical transformations represents a basis for future theoretical analysis. On the other hand, the change of the (13)C NMR chemical shift pattern upon the Pr --> Pfr photoisomerization is very different to that of the free model compound upon ZZZ --> ZZE photoisomerization. Hence, the character of the double-bond isomerization in phytochrome is essentially different from that of a classical photoinduced double-bond isomerization, emphasizing the role of the protein environment in the modulation of this light-induced process.

摘要

(13)C NMR 化学位移质子化自由模型化合物的差异模式在有机溶液中,如文献中报道(M. Stanek,K. Grubmayr [1998] Chem. Eur. J.4,1653-1659),与藻胆蛋白组装过程中发生的质子化状态变化进行了比较phycocyanobilin(PCB)和脱辅基蛋白。这两个过程都会导致 NMR 信号发生相同的变化,表明组装过程与发色团的质子化有关,在异质、准液态蛋白质环境中产生阳离子辅助因子。两种差异模式的一致性表明,溶液中模型化合物的质子化会导致大环的几何形状部分拉伸,就像在蛋白质中发现的那样。事实上,在相同化学转化中,bilin 家族内差异模式的相似性代表了未来理论分析的基础。另一方面,Pr --> Pfr 光异构化过程中(13)C NMR 化学位移模式的变化与 ZZZ --> ZZE 光异构化过程中自由模型化合物的变化非常不同。因此,phytochrome 中双键异构化的性质本质上不同于经典的光诱导双键异构化,强调了蛋白质环境在调节这种光诱导过程中的作用。

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