Shroff Hari, Galbraith Catherine G, Galbraith James A, White Helen, Gillette Jennifer, Olenych Scott, Davidson Michael W, Betzig Eric
Howard Hughes Medical Institute, Janelia Farm Research Campus, Ashburn, VA 20147, USA.
Proc Natl Acad Sci U S A. 2007 Dec 18;104(51):20308-13. doi: 10.1073/pnas.0710517105. Epub 2007 Dec 12.
Accurate determination of the relative positions of proteins within localized regions of the cell is essential for understanding their biological function. Although fluorescent fusion proteins are targeted with molecular precision, the position of these genetically expressed reporters is usually known only to the resolution of conventional optics ( approximately 200 nm). Here, we report the use of two-color photoactivated localization microscopy (PALM) to determine the ultrastructural relationship between different proteins fused to spectrally distinct photoactivatable fluorescent proteins (PA-FPs). The nonperturbative incorporation of these endogenous tags facilitates an imaging resolution in whole, fixed cells of approximately 20-30 nm at acquisition times of 5-30 min. We apply the technique to image different pairs of proteins assembled in adhesion complexes, the central attachment points between the cytoskeleton and the substrate in migrating cells. For several pairs, we find that proteins that seem colocalized when viewed by conventional optics are resolved as distinct interlocking nano-aggregates when imaged via PALM. The simplicity, minimal invasiveness, resolution, and speed of the technique all suggest its potential to directly visualize molecular interactions within cellular structures at the nanometer scale.
准确确定细胞局部区域内蛋白质的相对位置对于理解其生物学功能至关重要。尽管荧光融合蛋白能够以分子精度靶向定位,但这些通过基因表达的报告分子的位置通常仅能达到传统光学显微镜的分辨率(约200纳米)。在此,我们报告使用双色光激活定位显微镜(PALM)来确定与光谱不同的光激活荧光蛋白(PA-FP)融合的不同蛋白质之间的超微结构关系。这些内源性标签的非侵入性整合有助于在整个固定细胞中实现约20 - 30纳米的成像分辨率,采集时间为5 - 30分钟。我们应用该技术对组装在黏附复合物中的不同蛋白质对进行成像,黏附复合物是迁移细胞中细胞骨架与底物之间的中央附着点。对于几对蛋白质,我们发现,当通过传统光学显微镜观察时看似共定位的蛋白质,在通过PALM成像时可解析为不同的相互连锁的纳米聚集体。该技术的简单性、最小侵入性、分辨率和速度都表明其具有在纳米尺度直接可视化细胞结构内分子相互作用的潜力。