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Multi-Color Quantum Dot Tracking Using a High-Speed Hyperspectral Line-Scanning Microscope

机译:使用高速高光谱线扫描显微镜进行多色量子点跟踪

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摘要

Many cellular signaling processes are initiated by dimerization or oligomerization of membrane proteins. However, since the spatial scale of these interactions is below the diffraction limit of the light microscope, the dynamics of these interactions have been difficult to study on living cells. We have developed a novel high-speed hyperspectral microscope (HSM) to perform single particle tracking of up to 8 spectrally distinct species of quantum dots (QDs) at 27 frames per second. The distinct emission spectra of the QDs allows localization with ∼10 nm precision even when the probes are clustered at spatial scales below the diffraction limit. The capabilities of the HSM are demonstrated here by application of multi-color single particle tracking to observe membrane protein behavior, including: 1) dynamic formation and dissociation of Epidermal Growth Factor Receptor dimers; 2) resolving antigen induced aggregation of the high affinity IgE receptor, FcεR1; 3) four color QD tracking while simultaneously visualizing GFP-actin; and 4) high-density tracking for fast diffusion mapping.
机译:许多细胞信号传导过程是由膜蛋白的二聚或寡聚引发的。但是,由于这些相互作用的空间尺度低于光学显微镜的衍射极限,因此很难在活细胞上研究这些相互作用的动力学。我们已经开发出一种新颖的高速高光谱显微镜(HSM),以每秒27帧的速度对多达8种光谱不同的量子点(QD)进行单粒子跟踪。量子点的独特发射光谱允许以约10 nm的精度进行定位,即使探针聚集在低于衍射极限的空间尺度上也是如此。 HSM的功能在这里通过应用多色单粒子跟踪来观察膜蛋白行为来证明,包括:1)表皮生长因子受体二聚体的动态形成和解离; 2)解决抗原诱导的高亲和力IgE受体FcεR1的聚集; 3)四色QD跟踪,同时可视化GFP-肌动蛋白;和4)用于快速扩散映射的高密度跟踪。

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