Pablo Carravilla, Anindita Dasgupta, Gaukhar Zhurgenbayeva, Dmytro I Danylchuk, Andrey S Klymchenko, Erdinc Sezgin, Christian Eggeling
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引用次数: 0
摘要
要了解活细胞中质膜的纳米级组织和动态,需要具有高空间和时间分辨率的显微镜技术,这样才能进行长时间的采集,并对膜的生物物理特性(如脂质有序化)进行量化。在最流行的超分辨率技术中,受激发射耗尽(STED)显微镜是时间分辨率最高的显微镜之一,最终取决于扫描速度。然而,使用 STED 显微镜监测活体过程受到光漂白的严重限制,而可交换的膜染料只能暂时驻留在膜中,这就避免了光漂白的问题。在这里,我们展示了一种基于尼罗河红的极性敏感可交换质膜探针 NR4A,它能以较高的时空分辨率和较长的采集时间实时对膜生物物理参数进行超分辨量化。通过活细胞实时三维 STED 记录膜融合过程中泡的形成和脂质交换,以及 STED-荧光相关光谱实验同时量化模型膜和活细胞膜中相关的膜动力学和脂质堆积,展示了这种极性敏感可交换染料的潜力。
Long-term STED imaging of membrane packing and dynamics by exchangeable polarity-sensitive dyes.
Understanding the plasma membrane nanoscale organization and dynamics in living cells requires microscopy techniques with high spatial and temporal resolution that permit for long acquisition times and allow for the quantification of membrane biophysical properties, such as lipid ordering. Among the most popular super-resolution techniques, stimulated emission depletion (STED) microscopy offers one of the highest temporal resolutions, ultimately defined by the scanning speed. However, monitoring live processes using STED microscopy is significantly limited by photobleaching, which recently has been circumvented by exchangeable membrane dyes that only temporarily reside in the membrane. Here, we show that NR4A, a polarity-sensitive exchangeable plasma membrane probe based on Nile red, permits the super-resolved quantification of membrane biophysical parameters in real time with high temporal and spatial resolution as well as long acquisition times. The potential of this polarity-sensitive exchangeable dye is showcased by live-cell real-time three-dimensional STED recordings of bleb formation and lipid exchange during membrane fusion as well as by STED-fluorescence correlation spectroscopy experiments for the simultaneous quantification of membrane dynamics and lipid packing that correlate in model and live-cell membranes.