Lanzanò Luca, Scipioni Lorenzo, Di Bona Melody, Bianchini Paolo, Bizzarri Ranieri, Cardarelli Francesco, Diaspro Alberto, Vicidomini Giuseppe
Nanoscopy, Nanophysics, Istituto Italiano di Tecnologia, via Morego 30, Genoa, 16163, Italy.
Department of Computer Science, Bioengineering, Robotics and Systems Engineering, University of Genoa, Genoa, 16145, Italy.
Nat Commun. 2017 Jul 6;8(1):65. doi: 10.1038/s41467-017-00117-2.
The observation of molecular diffusion at different spatial scales, and in particular below the optical diffraction limit (<200 nm), can reveal details of the subcellular topology and its functional organization. Stimulated-emission depletion microscopy (STED) has been previously combined with fluorescence correlation spectroscopy (FCS) to investigate nanoscale diffusion (STED-FCS). However, stimulated-emission depletion fluorescence correlation spectroscopy has only been used successfully to reveal functional organization in two-dimensional space, such as the plasma membrane, while, an efficient implementation for measurements in three-dimensional space, such as the cellular interior, is still lacking. Here we integrate the STED-FCS method with two analytical approaches, the recent separation of photons by lifetime tuning and the fluorescence lifetime correlation spectroscopy, to simultaneously probe diffusion in three dimensions at different sub-diffraction scales. We demonstrate that this method efficiently provides measurement of the diffusion of EGFP at spatial scales tunable from the diffraction size down to ∼80 nm in the cytoplasm of living cells.The measurement of molecular diffusion at sub-diffraction scales has been achieved in 2D space using STED-FCS, but an implementation for 3D diffusion is lacking. Here the authors present an analytical approach to probe diffusion in 3D space using STED-FCS and measure the diffusion of EGFP at different spatial scales.
在不同空间尺度下观察分子扩散,尤其是在光学衍射极限(<200 nm)以下进行观察,能够揭示亚细胞拓扑结构及其功能组织的细节。受激发射损耗显微镜(STED)此前已与荧光相关光谱法(FCS)相结合,用于研究纳米级扩散(STED-FCS)。然而,受激发射损耗荧光相关光谱法仅成功用于揭示二维空间中的功能组织,如质膜,而对于三维空间(如细胞内部)测量的有效实现方法仍付诸阙如。在此,我们将STED-FCS方法与两种分析方法相结合,即最近通过寿命调谐进行光子分离以及荧光寿命相关光谱法,以同时在不同亚衍射尺度下探测三维空间中的扩散。我们证明,该方法能够有效地在活细胞细胞质中,于从衍射尺寸至约80 nm可调的空间尺度下,测量增强型绿色荧光蛋白(EGFP)的扩散。利用STED-FCS已在二维空间实现了亚衍射尺度下分子扩散的测量,但缺乏三维扩散的实现方法。在此,作者提出一种利用STED-FCS探测三维空间中扩散并测量不同空间尺度下EGFP扩散的分析方法。