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光合原核生物荷兰绿丝藻质体蓝素的核磁共振溶液结构

NMR solution structure of plastocyanin from the photosynthetic prokaryote, Prochlorothrix hollandica.

作者信息

Babu C R, Volkman B F, Bullerjahn G S

机构信息

Center for Photochemical Sciences, Department of Biological Sciences, Bowling Green State University, OH 43403, USA.

出版信息

Biochemistry. 1999 Apr 20;38(16):4988-95. doi: 10.1021/bi983024f.

Abstract

The solution structure of a divergent plastocyanin (PC) from the photosynthetic prokaryote Prochlorothrix hollandica was determined by homonuclear 1H NMR spectroscopy. Nineteen structures were calculated from 1222 distance restraints, yielding a family of structures having an average rmsd of 0.42 +/- 0.08 A for backbone atoms and 0.71 +/- 0.07 A for heavy atoms to the mean structure. No distance constraint was violated by more than 0.26 A in the structure family. Despite the low number of conserved residues shared with other PC homologues, the overall folding pattern of P. hollandica PC is similar to other PCs, in that the protein forms a two-sheet beta-barrel tertiary structure. The greatest variability among the backbone structures is seen in the loop region from residues 47-60. The differences seen in the P. hollandica PC homologue likely arise due to a small deletion of 2-4 residues compared to the PC consensus; this yields a less extended loop containing a short alpha-helix from residues Ala52-Leu55. Additionally, the protein has an altered hydrophobic patch thought to be important in binding reaction partners. Whereas the backbone structure is very similar within the loops of the hydrophobic region, the presence of two unique residues (Tyr12 and Pro14) yields a structurally different hydrophobic surface likely important in binding P. hollandica Photosystem I.

摘要

通过同核¹H NMR光谱法测定了光合原核生物荷兰原绿球藻中一种趋异质体蓝素(PC)的溶液结构。从1222个距离约束条件计算出19种结构,得到一组结构,其主链原子相对于平均结构的平均均方根偏差(rmsd)为0.42±0.08 Å,重原子为0.71±0.07 Å。在该结构家族中,没有距离约束被违反超过0.26 Å。尽管与其他PC同源物共有的保守残基数量较少,但荷兰原绿球藻PC的整体折叠模式与其他PC相似,即该蛋白质形成了一个双片β桶三级结构。主链结构中最大的变异性出现在47 - 60位残基的环区域。与PC共有序列相比,荷兰原绿球藻PC同源物中出现的差异可能是由于2 - 4个残基的小缺失导致的;这产生了一个延伸较少的环,其中包含从Ala52到Leu55的短α螺旋。此外,该蛋白质有一个改变的疏水补丁,被认为在结合反应伙伴中很重要。虽然疏水区域环内的主链结构非常相似,但两个独特残基(Tyr12和Pro14)的存在产生了一个结构上不同的疏水表面,这可能在结合荷兰原绿球藻光系统I中很重要。

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