Gustavsson Anna-Karin, Petrov Petar N, Lee Maurice Y, Shechtman Yoav, Moerner W E
Dept. of Chemistry, Stanford University, 375 North-South Axis, Stanford, CA, USA 94305-4401.
Dept. of Biosciences and Nutrition, Karolinska Institutet, Stockholm, Sweden 17111.
Proc SPIE Int Soc Opt Eng. 2018 Feb;10500. doi: 10.1117/12.2288443.
To obtain a complete picture of subcellular nanostructures, cells must be imaged with high resolution in all three dimensions (3D). Here, we present tilted light sheet microscopy with 3D point spread functions (TILT3D), an imaging platform that combines a novel, tilted light sheet illumination strategy with engineered long axial range point spread functions (PSFs) for low-background, 3D super localization of single molecules as well as 3D super-resolution imaging in thick cells. TILT3D is built upon a standard inverted microscope and has minimal custom parts. The axial positions of the single molecules are encoded in the shape of the PSF rather than in the position or thickness of the light sheet, and the light sheet can therefore be formed using simple optics. The result is flexible and user-friendly 3D super-resolution imaging with tens of nm localization precision throughout thick mammalian cells. We validated TILT3D for 3D super-resolution imaging in mammalian cells by imaging mitochondria and the full nuclear lamina using the double-helix PSF for single-molecule detection and the recently developed Tetrapod PSF for fiducial bead tracking and live axial drift correction. We envision TILT3D to become an important tool not only for 3D super-resolution imaging, but also for live whole-cell single-particle and single-molecule tracking.
为了全面了解亚细胞纳米结构,必须对细胞进行三维(3D)高分辨率成像。在此,我们展示了具有3D点扩散函数的倾斜光片显微镜(TILT3D),这是一种成像平台,它将新颖的倾斜光片照明策略与工程化的长轴向范围点扩散函数(PSF)相结合,用于低背景下单个分子的3D超定位以及厚细胞中的3D超分辨率成像。TILT3D基于标准倒置显微镜构建,定制部件最少。单个分子的轴向位置编码在PSF的形状中,而不是光片的位置或厚度中,因此可以使用简单的光学器件形成光片。结果是在整个厚哺乳动物细胞中实现了具有数十纳米定位精度的灵活且用户友好的3D超分辨率成像。我们通过使用双螺旋PSF进行单分子检测以及最近开发的四足PSF进行基准珠跟踪和实时轴向漂移校正,对线粒体和完整核纤层进行成像,验证了TILT3D在哺乳动物细胞中的3D超分辨率成像。我们设想TILT3D不仅将成为3D超分辨率成像的重要工具,还将成为活细胞全细胞单粒子和单分子跟踪的重要工具。