动态超分辨荧光成像中,通过硅罗丹明FRET增强红色荧光蛋白的光稳定性。

IF 7.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Xuelian Zhou, Lu Miao, Wei Zhou, Yonghui Chen, Yiyan Ruan, Xiang Wang, Guangying Wang, Pengjun Bao, Qinglong Qiao, Zhaochao Xu
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引用次数: 0

摘要

红色荧光蛋白(rfp)广泛应用于生物成像。然而,它们对光漂白的敏感性限制了它们在高光稳定性至关重要的超分辨率成像中的有效性。在这项研究中,我们通过结合混合Förster共振能量转移(FRET)对,利用rfp作为能量供体和光稳定的荧光团,四甲基硅罗丹明(TMSiR)作为受体,大大提高了rfp的光稳定性。通过与rfp相关的HaloTag蛋白融合,选择性地引入TMSiR。我们构建了一系列具有不同FRET效率的mApple/mCherry-TMSiR对。我们的研究结果表明,mApple/mCherry-TMSiR配合物中较高的FRET效率与rfp的光稳定性增强有关。FRET与rfp的单重态到三重态转变相竞争,而HaloTag蛋白引入的空间屏障阻止了si -罗达明附近敏化的活性氧与红色荧光蛋白之间的相互作用,增强了红色荧光蛋白的光稳定性。mCherry的光稳定性提高了近6倍,允许在活细胞中进行动态结构照明显微镜(SIM)成像的持续时间延长,有助于捕获细胞器相互作用的更精细细节。利用光稳定性mCherry蛋白,我们追踪了各种线粒体裂变过程及其与溶酶体和内质网(ER)的相互作用。有趣的是,我们观察到内质网参与了所有的线粒体裂变事件,而溶酶体只参与了其中的66%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the photostability of red fluorescent proteins through FRET with Si-rhodamine for dynamic super-resolution fluorescence imaging.

Red fluorescent proteins (RFPs) are extensively utilized in biological imaging. However, their susceptibility to photobleaching restricts their effectiveness in super-resolution imaging where high photostability is crucial. In this study, we substantially improved the photostability of RFPs by incorporating a hybrid Förster resonance energy transfer (FRET) pair, utilizing RFPs as the energy donor and a photostable fluorophore, tetramethyl-Si-rhodamine (TMSiR), as the acceptor. TMSiR was selectively introduced through fusion with the HaloTag protein linked to the RFPs. We constructed a series of mApple/mCherry-TMSiR pairs with varying FRET efficiencies. Our findings reveal that higher FRET efficiency in the mApple/mCherry-TMSiR complexes correlates with enhanced photostability of RFPs. FRET competes with the singlet-to-triplet state transition of RFPs, while the spatial barrier introduced by the HaloTag protein prevents interaction between sensitized reactive oxygen species near Si-rhodamine and red fluorescent protein, enhancing the photostability of red fluorescent protein. The nearly 6-fold enhancement in mCherry's photostability allows for extended durations of dynamic structured illumination microscopy (SIM) imaging in living cells, facilitating the capture of finer details in organelle interactions. Leveraging the photostable mCherry protein, we tracked various mitochondrial fission processes and their interactions with lysosomes and the endoplasmic reticulum (ER). Interestingly, we observed the involvement of ER in all mitochondrial fission events, whereas lysosomes participated in only 66% of them.

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来源期刊
Chemical Science
Chemical Science CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
14.40
自引率
4.80%
发文量
1352
审稿时长
2.1 months
期刊介绍: Chemical Science is a journal that encompasses various disciplines within the chemical sciences. Its scope includes publishing ground-breaking research with significant implications for its respective field, as well as appealing to a wider audience in related areas. To be considered for publication, articles must showcase innovative and original advances in their field of study and be presented in a manner that is understandable to scientists from diverse backgrounds. However, the journal generally does not publish highly specialized research.
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