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Fluorescence anisotropy measurement of green fluorescent protein for nano-environment probing

机译:用于纳米环境探测的绿色荧光蛋白的荧光各向异性测量

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Fluorescence anisotropy of GFP molecules, suspended in solution and immobilized on a glass substrate, was measured to investigate the application for nano-environment probe. Nano-environment around living cell is of interest in relation with wide range of fields, such as cell interaction in cancer tissue, nerve signal transmission and so on. However, nano-environment is so sensitive to the interference of probe or measurement itself. For example, measurement of neuron potential is performed by inserting electrode to the tissue, or staining with toxic dye. For measurement of nano-environment GFP has some superior characteristics. GFP molecule itself is soluble protein and has little toxicity to the cell. It need no prosthetic group for fluorescent activity, and easily introduced by genetic method. We investigated the fluorescence anisotropy of GFP for probing molecular motion in the nano space. Anisotropy of free molecule in solution was compatible with theoretical value. Immobilized molecule, on the contrary, showed higher anisotropy than theoretically expected. This extraordinary value may come from hydrophobic interaction of GFP with glass surface, that can be utilized for nano-probing.
机译:测量了悬浮在溶液中并固定在玻璃基板上的GFP分子的荧光各向异性,以研究其在纳米环境探针中的应用。活细胞周围的纳米环境与广泛的领域有关,例如癌症组织中的细胞相互作用,神经信号传递等,是令人感兴趣的。但是,纳米环境对探针或测量本身的干扰非常敏感。例如,通过将电极插入组织或用有毒染料染色来进行神经元电位的测量。对于纳米环境的测量,GFP具有一些优越的特性。 GFP分子本身是可溶性蛋白,对细胞几乎没有毒性。它不需要用于荧光活性的修复基团,并且易于通过遗传方法引入。我们研究了GFP的荧光各向异性,以探测纳米空间中的分子运动。溶液中游离分子的各向异性与理论值相符。相反,固定化分子显示出比理论上更高的各向异性。此非凡的价值可能来自GFP与玻璃表面的疏水相互作用,可用于纳米探测。

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