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Dynamics of green fluorescent protein mutant2 in solution on spin-coated glasses and encapsulated in wet silica gels

机译:绿色荧光蛋白突变体2在溶液中在旋涂玻璃上并封装在湿硅胶中的动力学

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摘要

Single-molecule experiments are performed by investigating spectroscopic properties of molecules either diffusing in and out of the observation volume or fixed in space by different immobilization procedures. To evaluate the effect of immobilization methods on the structural and dynamic properties of proteins, a highly fluorescent mutant of the green fluorescent protein, GFPmut2, was spectroscopically characterized in bulk solutions, dispersed on etched glasses, and encapsulated in wet, nanoporous silica gels. The emission spectrum, the fluorescence lifetimes, the anisotropy, and the rotational correlation time of GFPmut2, encapsulated in silica gels, are very similar to those obtained in solution. This finding indicates that the gel matrix does not alter the protein conformation and dynamics. In contrast, the fluorescence lifetimes of GFPmut2 on glasses are two-to fourfold higher and the fluorescence anisotropy decays yield almost no phase shifts. This indicates that the interaction of the protein with the bare glass surface induces a significant structural perturbation and severely restricts the rotational motion. Single molecules of GFPmut2 on glasses or in silica gels, identified by confocal image analysis, show a significant stability to illumination with bleaching times of the order of 90 and 60 sec, respectively. Overall, these data indicate that silica gels represent an ideal matrix for following biologically relevant events at a single molecule level.
机译:通过研究扩散进或出观察体积或通过不同固定程序固定在空间中的分子的光谱特性来进行单分子实验。为了评估固定化方法对蛋白质结构和动态特性的影响,对绿色荧光蛋白GFPmut2的高荧光突变体进行了光谱表征,方法是在本体溶液中分散在蚀刻的玻璃上,并封装在湿的纳米多孔硅胶中。封装在硅胶中的GFPmut2的发射光谱,荧光寿命,各向异性和旋转相关时间与溶液中获得的非常相似。这一发现表明凝胶基质不会改变蛋白质的构象和动力学。相比之下,玻璃上的GFPmut2的荧光寿命要高2-4倍,并且荧光各向异性的衰减几乎不会产生相移。这表明蛋白质与裸露的玻璃表面的相互作用引起明显的结构扰动并严重限制了旋转运动。通过共焦图像分析鉴定的玻璃或硅胶中的GFPmut2单分子显示出显着的照明稳定性,漂白时间分别为90秒和60秒。总体而言,这些数据表明硅胶代表了在单个分子水平上追踪生物学相关事件的理想基质。

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