Gustafsson Mats G L, Shao Lin, Carlton Peter M, Wang C J Rachel, Golubovskaya Inna N, Cande W Zacheus, Agard David A, Sedat John W
Department of Physiology and Program in Bioengineering, University of California, San Francisco, California, USA.
Biophys J. 2008 Jun;94(12):4957-70. doi: 10.1529/biophysj.107.120345. Epub 2008 Mar 7.
Structured illumination microscopy is a method that can increase the spatial resolution of wide-field fluorescence microscopy beyond its classical limit by using spatially structured illumination light. Here we describe how this method can be applied in three dimensions to double the axial as well as the lateral resolution, with true optical sectioning. A grating is used to generate three mutually coherent light beams, which interfere in the specimen to form an illumination pattern that varies both laterally and axially. The spatially structured excitation intensity causes normally unreachable high-resolution information to become encoded into the observed images through spatial frequency mixing. This new information is computationally extracted and used to generate a three-dimensional reconstruction with twice as high resolution, in all three dimensions, as is possible in a conventional wide-field microscope. The method has been demonstrated on both test objects and biological specimens, and has produced the first light microscopy images of the synaptonemal complex in which the lateral elements are clearly resolved.
结构照明显微镜术是一种通过使用空间结构化照明光来提高宽场荧光显微镜空间分辨率,使其超越经典极限的方法。在此我们描述了如何将该方法应用于三维,以实现轴向和横向分辨率翻倍,并具备真正的光学切片功能。使用一个光栅来生成三束相互相干的光束,这些光束在样本中发生干涉,形成一个在横向和轴向上都变化的照明图案。空间结构化的激发强度使通常无法获取的高分辨率信息通过空间频率混合被编码到观察到的图像中。这些新信息通过计算提取出来,并用于生成一个三维重建图像,其在所有三个维度上的分辨率都是传统宽场显微镜的两倍。该方法已在测试物体和生物样本上得到验证,并产生了联会复合体的首批光学显微镜图像,其中侧向元件清晰可辨。