Bancelin Stéphane, Mercier Luc, Murana Emanuele, Nägerl U Valentin
University of Bordeaux, CNRS, Interdisciplinary Institute for Neuroscience, UMR 5297, Bordeaux, France.
Neurophotonics. 2021 Jul;8(3):035001. doi: 10.1117/1.NPh.8.3.035001. Epub 2021 Jun 14.
Stimulated emission depletion (STED) microscopy enables nanoscale imaging of live samples, but it requires a specific spatial beam shaping that is highly sensitive to optical aberrations, limiting its depth penetration. Therefore, there is a need for methods to reduce optical aberrations and improve the spatial resolution of STED microscopy inside thick biological tissue. The aim of our work was to develop and validate a method based on adaptive optics to achieve an correction of spherical aberrations as a function of imaging depth. We first measured the aberrations in a phantom sample of gold and fluorescent nanoparticles suspended in an agarose gel with a refractive index closely matching living brain tissue. We then used a spatial light modulator to apply corrective phase shifts and validate this calibration approach by imaging neurons in living brain slices. After quantifying the spatial resolution in depth in phantom samples, we demonstrated that the corrections can substantially increase image quality in living brain slices. Specifically, we could measure structures as small as 80 nm at a depth of inside the biological tissue and obtain a 60% signal increase after correction. We propose a simple and robust approach to calibrate and compensate the distortions of the STED beam profile introduced by spherical aberrations with increasing imaging depth and demonstrated that this method offers significant improvements in microscopy performance for nanoscale cellular imaging in live tissue.
受激发射损耗(STED)显微镜能够对活样本进行纳米级成像,但它需要特定的空间光束整形,而这种整形对光学像差高度敏感,限制了其深度穿透能力。因此,需要一些方法来减少光学像差并提高厚生物组织内STED显微镜的空间分辨率。我们工作的目的是开发并验证一种基于自适应光学的方法,以实现根据成像深度对球差进行校正。我们首先在悬浮于琼脂糖凝胶中的金和荧光纳米颗粒的模型样本中测量像差,该琼脂糖凝胶的折射率与活脑组织紧密匹配。然后,我们使用空间光调制器施加校正相移,并通过对活脑切片中的神经元成像来验证这种校准方法。在对模型样本中的深度空间分辨率进行量化后,我们证明校正可以大幅提高活脑切片中的图像质量。具体而言,我们能够在生物组织内部深处测量小至80纳米的结构,并在校正后获得60%的信号增强。我们提出了一种简单且稳健的方法,用于校准和补偿随着成像深度增加由球差引入的STED光束轮廓的畸变,并证明该方法在活组织的纳米级细胞成像的显微镜性能方面有显著提升。