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Engineering and characterizing monomeric fluorescent proteins for live-cell imaging applications

机译:工程和表征用于活细胞成像应用的单体荧光蛋白

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Naturally occurring fluorescent proteins (FPs) cloned from marine organisms often suffer from many drawbacks for cell biology applications, including poor folding efficiency at 37 °C, slow chromophore formation and obligatory quaternary structure. Many of these drawbacks can be minimized or eliminated by using protein engineering and directed evolution, resulting in superior probes for use in live-cell fluorescence microscopy. In this protocol, we provide methods for engineering a monomeric FP, for enhancing its brightness by directed evolution, and for thoroughly characterizing the optimized variant. Variations on this procedure can be used to select for many other desirable features, such as a red-shifted emission spectrum or enhanced photostability. Although the length of the procedure is dependent on the degree of optimization desired, the basic steps can be accomplished in 4–6 weeks.
机译:从海洋生物中克隆的天然存在的荧光蛋白(FPs)通常遭受细胞生物学应用的许多缺点,包括在37°C下折叠效率低,发色团形成缓慢和必须的四级结构。通过使用蛋白质工程和定向进化,可以将这些缺点中的许多最小化或消除,从而得到用于活细胞荧光显微镜检查的优质探针。在此协议中,我们提供了工程化单体FP,通过定向进化增强其亮度以及彻底表征优化变体的方法。此过程的变化可用于选择许多其他所需的功能,例如红移发射光谱或增强的光稳定性。尽管过程的长度取决于所需的优化程度,但是基本步骤可以在4-6周内完成。

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