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Bridging length scales to measure polymer assembly

机译:桥接长度尺可测量聚合物组装

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摘要

Time-resolvable quantitative measurements of polymer concentration are very useful to elucidate protein polymerization pathways. There are numerous techniques to measure polymer concentrations in purified protein solutions, but few are applicable in vivo. Here we develop a methodology combining microscopy and spectroscopy to overcome the limitations of both approaches for measuring polymer concentration in cells and cell extracts. This technique is based on quantifying the relationship between microscopy and spectroscopy measurements at many locations. We apply this methodology to measure microtubule assembly in tissue culture cells and Xenopus egg extracts using two-photon microscopy with FLIM measurements of FRET. We find that the relationship between FRET and two-photon intensity quantitatively agrees with predictions. Furthermore, FRET and intensity measurements change as expected with changes in acquisition time, labeling ratios, and polymer concentration. Taken together, these results demonstrate that this approach can quantitatively measure microtubule assembly in complex environments. This methodology should be broadly useful for studying microtubule nucleation and assembly pathways of other polymers.
机译:时间分辨的聚合物浓度定量测量对于阐明蛋白质聚合途径非常有用。有多种技术可以测量纯化的蛋白质溶液中的聚合物浓度,但很少有适用于体内的技术。在这里,我们开发了一种将显微镜和光谱学结合起来的方法,以克服两种测量细胞和细胞提取物中聚合物浓度的方法的局限性。该技术基于在许多位置量化显微镜和光谱测量之间的关系。我们应用这种方法来测量组织培养细胞和非洲爪蟾卵提取物中的微管组装,使用双光子显微镜和FRET的FLIM测量。我们发现,FRET与双光子强度之间的关系在定量上与预测一致。此外,FRET和强度测量值会随着采集时间,标记率和聚合物浓度的变化而按预期变化。综上所述,这些结果表明,该方法可以定量测量复杂环境中的微管组装。该方法对于研究其他聚合物的微管成核和组装途径应具有广泛的用途。

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