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Accepting from the best donor; analysis of long-lifetime donor fluorescent protein pairings to optimise dynamic FLIM-based FRET experiments

机译:接受最好的捐助者;供体荧光蛋白配对的长期分析,以优化基于FLIM的动态FRET实验

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摘要

FRET biosensors have proven very useful tools for studying the activation of specific signalling pathways in living cells. Most biosensors designed to date have been predicated on fluorescent protein pairs that were identified by, and for use in, intensity based measurements, however fluorescence lifetime provides a more reliable measurement of FRET. Both the technology and fluorescent proteins available for FRET have moved on dramatically in the last decade. Lifetime imaging systems have become increasingly accessible and user-friendly, and there is an entire field of biology dedicated to refining and adapting different characteristics of existing and novel fluorescent proteins. This growing pool of fluorescent proteins includes the long-lifetime green and cyan fluorescent proteins Clover and mTurquoise2, the red variant mRuby2, and the dark acceptor sREACh. Here, we have tested these donors and acceptors in appropriate combinations against the standard or recommended norms (EGFP and mTFP as donors, mCherry and either Ypet or Venus as acceptors) to determine if they could provide more reliable, reproducible and quantifiable FLIM-FRET data to improve on the dynamic range compared to other donors and breadth of application of biosensor technologies. These tests were performed for comparison on both a wide-field, frequency domain system and a multiphoton, TCSPC time domain FLIM system. Clover proved to be an excellent donor with extended dynamic range in combination with mCherry on both platforms, while mRuby2 showed a high degree of variability and poor FRET efficiencies in all cases. mTFP-Venus was the most consistent cyan-yellow pair between the two FLIM methodologies, but mTurquoise2 has better dynamic range and transfers energy consistently over time to the dark acceptor sRCh. Combination of mTFP-sRCh with Clover-mCherry would allow the simultaneous use of two FLIM-FRET biosensors within one sample by eliminating the crosstalk between the yellow acceptor and green donor emissions.
机译:FRET生物传感器已被证明是非常有用的工具,用于研究活细胞中特定信号通路的激活。迄今为止,大多数设计的生物传感器都基于荧光蛋白对,这些荧光蛋白对可通过基于强度的测量进行识别,并用于基于强度的测量,但是荧光寿命提供了更可靠的FRET测量。在过去的十年中,可用于FRET的技术和荧光蛋白取得了巨大的进步。终生成像系统变得越来越易于​​访问和用户友好,并且生物学的整个领域致力于完善和适应现有和新型荧光蛋白的不同特征。这种不断增长的荧光蛋白库包括长寿命的绿色和青色荧光蛋白Clover和mTurquoise2,红色变体mRuby2和黑暗受体sREACh。在这里,我们已经根据标准或推荐规范(EGFP和mTFP作为供体,mCherry和Ypet或Venus作为受体)以适当的组合测试了这些供体和受体,以确定它们是否可以提供更可靠,可再现和可量化的FLIM-FRET数据与其他捐助者相比,可改善动态范围,并扩大生物传感器技术的应用范围。进行了这些测试,以在广域频域系统和多光子TCSPC时域FLIM系统上进行比较。在两个平台上,四叶草与mCherry结合使用均被证明是具有广泛动态范围的出色捐助者,而mRuby2在所有情况下均表现出高度的可变性和差的FRET效率。 mTFP-维纳斯是两种FLIM方法之间最一致的青黄色/黄色对,但是mTurquoise2具有更好的动态范围,并且随着时间的推移将能量始终如一地传递给暗受体sRCh。 mTFP-sRCh与Clover-mCherry的组合将通过消除黄色受体和绿色供体发射之间的串扰,允许在一个样品中同时使用两个FLIM-FRET生物传感器。

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