Institute for Biophysics, University of Linz, Linz, Austria.
Nanotechnology. 2010 Mar 19;21(11):115504. doi: 10.1088/0957-4484/21/11/115504. Epub 2010 Feb 22.
The combination of fluorescence microscopy and atomic force microscopy has a great potential in single-molecule-detection applications, overcoming many of the limitations coming from each individual technique. Here we present a new platform of combined fluorescence and simultaneous topography and recognition imaging (TREC) for improved localization of cellular receptors. Green fluorescent protein (GFP) labeled human sodium-glucose cotransporter (hSGLT1) expressed Chinese Hamster Ovary (CHO) cells and endothelial cells (MyEnd) from mouse myocardium stained with phalloidin-rhodamine were used as cell systems to study AFM topography and fluorescence microscopy on the same surface area. Topographical AFM images revealed membrane features such as lamellipodia, cytoskeleton fibers, F-actin filaments and small globular structures with heights ranging from 20 to 30 nm. Combined fluorescence and TREC imaging was applied to detect density, distribution and localization of YFP-labeled CD1d molecules on alpha-galactosylceramide (alphaGalCer)-loaded THP1 cells. While the expression level, distribution and localization of CD1d molecules on THP1 cells were detected with fluorescence microscopy, the nanoscale distribution of binding sites was investigated with molecular recognition imaging by using a chemically modified AFM tip. Using TREC on the inverted light microscope, the recognition sites of cell receptors were detected in recognition images with domain sizes ranging from approximately 25 to approximately 160 nm, with the smaller domains corresponding to a single CD1d molecule.
荧光显微镜和原子力显微镜的结合在单分子检测应用中具有很大的潜力,克服了每种单独技术的许多限制。在这里,我们提出了一种新的荧光和同时形貌和识别成像(TREC)组合平台,用于提高细胞受体的定位能力。用绿色荧光蛋白(GFP)标记的人葡萄糖钠协同转运蛋白(hSGLT1)和用鬼笔环肽 - 罗丹明染色的来自小鼠心肌的内皮细胞(MyEnd)作为细胞系统,用于在同一表面积上进行 AFM 形貌和荧光显微镜研究。形貌 AFM 图像显示了细胞膜特征,如片状伪足、细胞骨架纤维、F-肌动蛋白丝和高度为 20 至 30nm 的小球状结构。组合荧光和 TREC 成像用于检测载有 alphaGalCer 的 THP1 细胞上 YFP 标记的 CD1d 分子的密度、分布和定位。虽然通过荧光显微镜检测了 THP1 细胞上 CD1d 分子的表达水平、分布和定位,但通过使用化学修饰的 AFM 尖端进行分子识别成像,研究了结合位点的纳米级分布。在倒置荧光显微镜上使用 TREC,以约 25 至约 160nm 的域大小在识别图像中检测到细胞受体的识别位点,较小的域对应于单个 CD1d 分子。