Wiedenmann Jörg, Schenk Andreas, Röcker Carlheinz, Girod Andreas, Spindler Klaus-Dieter, Nienhaus G Ulrich
Department of General Zoology, University of Ulm, 89069 Ulm, Germany.
Proc Natl Acad Sci U S A. 2002 Sep 3;99(18):11646-51. doi: 10.1073/pnas.182157199. Epub 2002 Aug 15.
We performed the biochemical and biophysical characterization of a red fluorescent protein, eqFP611, from the sea anemone Entacmaea quadricolor cloned in Escherichia coli. With an excitation maximum at 559 nm and an emission maximum at 611 nm, the recombinant protein shows the most red-shifted emission and the largest Stokes shift of all nonmodified proteins in the green fluorescent protein family. The protein fluoresces with a high quantum yield of 0.45, although it resembles the nonfluorescent members of this protein class, as inferred from the absence of the key amino acid serine at position 143. Fluorescence is constant within the range pH 4-10. Red fluorophore maturation reaches a level of 90% after approximately 12 h by passing through a green intermediate. After complete maturation, only a small fraction of the green species (less than 1%) persists. The protein has a reduced tendency to oligomerize, as shown by its monomeric appearance in SDS/PAGE analysis and single-molecule experiments. However, it forms tetramers at higher concentrations in the absence of detergent. Fluorescence correlation spectroscopy reveals light-driven transitions between bright and dark states on submillisecond and millisecond time scales. Applicability of eqFP611 for in vivo labeling in eukaryotic systems was shown by expression in a mammalian cell culture.
我们对克隆于大肠杆菌中的来自四色海葵(Entacmaea quadricolor)的红色荧光蛋白eqFP611进行了生化和生物物理特性分析。该重组蛋白的最大激发波长为559 nm,最大发射波长为611 nm,在绿色荧光蛋白家族的所有未修饰蛋白中,其发射波长红移程度最大,斯托克斯位移也最大。尽管从第143位关键氨基酸丝氨酸的缺失推断,该蛋白类似于此类蛋白中的非荧光成员,但它仍以0.45的高量子产率发出荧光。在pH 4 - 10范围内荧光保持恒定。红色荧光团成熟过程通过绿色中间体,大约12小时后达到90%的成熟水平。完全成熟后,只有一小部分绿色物种(不到1%)持续存在。如SDS/PAGE分析和单分子实验中其单体形态所示,该蛋白寡聚化倾向降低。然而,在没有去污剂的情况下,它在较高浓度时会形成四聚体。荧光相关光谱揭示了在亚毫秒和毫秒时间尺度上光驱动的亮态和暗态之间的转变。在哺乳动物细胞培养中的表达证明了eqFP611在真核系统中进行体内标记的适用性。