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确定精氨酸96在绿色荧光蛋白荧光团生物合成中的作用。

Defining the role of arginine 96 in green fluorescent protein fluorophore biosynthesis.

作者信息

Wood Timothy I, Barondeau David P, Hitomi Chiharu, Kassmann Carey J, Tainer John A, Getzoff Elizabeth D

机构信息

Department of Molecular Biology, The Skaggs Institute for Chemical Biology, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.

出版信息

Biochemistry. 2005 Dec 13;44(49):16211-20. doi: 10.1021/bi051388j.

Abstract

Aequoria victoria green fluorescent protein (GFP) is a revolutionary molecular biology tool because of its spontaneous peptide backbone cyclization and chromophore formation from residues Ser65, Tyr66, and Gly67. Here we use structure-based design, comprehensive targeted mutagenesis, and high-resolution crystallography to probe the significant functional role of conserved Arg96 (R96) in chromophore maturation. The R96M GFP variant, in which the R96M side chain is similar in volume but lacks the R96 positive charge, exhibits dramatically slower chromophore maturation kinetics (from hours to months). Comparison of the precyclized conformation of the chromophore-forming residues with the mature R96M chromophore reveals a similar Y66 conformer, contrary to the large Y66 conformational change previously defined in the slowly maturing R96A variant [Barondeau, D. P., Putnam, C. D., Kassmann, C. J., Tainer, J. A., and Getzoff, E. D. (2003) Proc. Natl. Acad. Sci. U.S.A. 100, 12111-12116]. Comprehensive R96 mutagenesis and fluorescent colony screening indicate that only the R96K substitution restores wild-type maturation kinetics. Further, we show that the slowly maturing R96A variant can be complemented with a Q183R second-site mutation designed to restore the missing R96 positive charge and rapid fluorophore biosynthesis. Moreover, comparative structural analysis of R96M, R96K, R96A/Q183R, and wild-type GFP reveals the importance of the presence of positive charge, rather than its exact position. Together, these structural, mutational, and biochemical results establish a pivotal role for the R96 positive charge in accelerating the GFP post-translational modification, with implications for peptide backbone cyclization in GFP, its homologues, and related biological systems.

摘要

维多利亚多管水母绿色荧光蛋白(GFP)是一种具有革命性的分子生物学工具,这是由于其肽主链能自发环化,并由丝氨酸65(Ser65)、酪氨酸66(Tyr66)和甘氨酸67(Gly67)残基形成生色团。在此,我们运用基于结构的设计、全面的定点诱变以及高分辨率晶体学技术,来探究保守的精氨酸96(R96)在生色团成熟过程中的重要功能作用。R96M GFP变体中,R96M侧链体积相似但缺少R96的正电荷,其生色团成熟动力学显著减慢(从数小时延长至数月)。将形成生色团的残基的预环化构象与成熟的R96M生色团进行比较,发现Y66构象相似,这与先前在缓慢成熟的R96A变体中定义的Y66大构象变化相反[巴龙多,D.P.,普特南,C.D.,卡斯曼,C.J.,泰纳,J.A.,和格茨奥夫,E.D.(2003年)《美国国家科学院院刊》100,12111 - 12116]。全面的R96诱变和荧光菌落筛选表明,只有R96K替代能恢复野生型的成熟动力学。此外,我们表明,缓慢成熟的R96A变体可以通过设计恢复缺失的R96正电荷和快速荧光团生物合成的Q183R第二位点突变来互补。而且,对R96M、R96K、R96A/Q183R和野生型GFP的比较结构分析揭示了正电荷存在的重要性,而非其确切位置。总之,这些结构、突变和生化结果确立了R96正电荷在加速GFP翻译后修饰中的关键作用,这对GFP、其同源物及相关生物系统中的肽主链环化具有启示意义。

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