Brock R, Vàmosi G, Vereb G, Jovin T M
Department of Molecular Biology, Max Planck Institute for Biophysical Chemistry, Am Fassberg 11, D-37077 Göttingen, Germany.
Proc Natl Acad Sci U S A. 1999 Aug 31;96(18):10123-8. doi: 10.1073/pnas.96.18.10123.
Fluorescence correlation microscopy (FCM) was applied to characterize fusion proteins of the green fluorescent protein (GFP) on the cellular as well as molecular level within seconds in an integrated instrument. FCM combines the inherent sensitivity and high spatial resolution of fluorescence correlation spectroscopy with fluorescence imaging and micropositioning, thereby providing a spectrum of molecular information in the cellular context. Signatures of characteristic parameters derived from the autocorrelation functions served to distinguish a GFP fusion protein of the epidermal growth factor receptor from GFP fluorescence in the endoplasmic reticulum and cytoplasm. Diffusion constants measured for free transiently expressed GFP reproduced values reported previously with other techniques. The accessible concentration range extends from millions to only a few thousand molecules per cell, with single molecule detectability in the femtoliter detection volume. The detailed molecular characterization offered by FCM is fully compatible with automation in sample identification and detection, offering new possibilities for highly integrated high-throughput screening.
荧光相关显微镜(FCM)被应用于在一台集成仪器中在数秒内从细胞水平以及分子水平对绿色荧光蛋白(GFP)的融合蛋白进行表征。FCM将荧光相关光谱法固有的灵敏度和高空间分辨率与荧光成像及微定位相结合,从而在细胞环境中提供一系列分子信息。从自相关函数得出的特征参数的特征用于区分表皮生长因子受体的GFP融合蛋白与内质网和细胞质中的GFP荧光。对瞬时表达的游离GFP测量的扩散常数重现了先前用其他技术报道的值。可达到的浓度范围从每个细胞数百万个分子延伸至仅几千个分子,在飞升检测体积中具有单分子可检测性。FCM提供的详细分子表征与样品识别和检测中的自动化完全兼容,为高度集成的高通量筛选提供了新的可能性。