Institute of Cardiovascular Sciences, College of Medical and Dental Sciences, University of Birmingham, Birmingham, UK.
Centre of Membrane Proteins and Receptors (COMPARE), Universities of Birmingham and Nottingham, Midlands, UK.
Sci Rep. 2017 Aug 16;7(1):8450. doi: 10.1038/s41598-017-08493-x.
Single molecule imaging approaches like dSTORM and PALM resolve structures at 10-20 nm, and allow for unique insights into protein stoichiometry and spatial relationships. However, key obstacles remain in developing highly accurate quantitative single molecule approaches. The genomic tagging of PALM fluorophores through CRISPR-Cas9 offers an excellent opportunity for generating stable cell lines expressing a defined single molecule probe at endogenous levels, without the biological disruption and variability inherent to transfection. A fundamental question is whether these comparatively low levels of expression can successfully satisfy the stringent labelling demands of super-resolution SMLM. Here we apply CRISPR-Cas9 gene editing to tag a cytoskeletal protein (α-tubulin) and demonstrate a relationship between expression level and the subsequent quality of PALM imaging, and that spatial resolutions comparable to dSTORM can be achieved with CRISPR-PALM. Our approach shows a relationship between choice of tag and the total expression of labelled protein, which has important implications for the development of future PALM tags. CRISPR-PALM allows for nanoscopic spatial resolution and the unique quantitative benefits of single molecule localization microscopy through endogenous expression, as well as the capacity for super-resolved live cell imaging.
单分子成像方法,如 dSTORM 和 PALM,可解析出 10-20nm 的结构,使人们能够深入了解蛋白质的计量和空间关系。然而,在开发高度准确的定量单分子方法方面仍存在关键障碍。通过 CRISPR-Cas9 对 PALM 荧光团进行基因组标记,为在天然水平表达定义的单分子探针的稳定细胞系提供了极好的机会,而不会产生转染固有的生物破坏和可变性。一个基本问题是,这些相对较低的表达水平是否能够成功满足超分辨率 SMLM 的严格标记要求。在这里,我们应用 CRISPR-Cas9 基因编辑来标记细胞骨架蛋白(α-微管蛋白),并证明表达水平与随后的 PALM 成像质量之间存在关系,并且可以通过 CRISPR-PALM 实现与 dSTORM 相当的空间分辨率。我们的方法表明了标记物的选择与标记蛋白的总表达之间的关系,这对未来 PALM 标记物的发展具有重要意义。CRISPR-PALM 允许通过内源性表达实现纳米级空间分辨率和单分子定位显微镜的独特定量优势,以及超分辨活细胞成像的能力。