Cells can crawl, self-heal, and tune their stiffness due to their remarkably dynamic cytoskeleton. As such, reconstituting networks of cytoskeletal biopolymers may lead to a host of active and adaptable materials. However, engineering such materials with precisely tuned properties requires measuring how the dynamics depend on the network composition and synthesis methods. Quantifying such dynamics is challenged by variations across the time, space, and formulation space of composite networks. The protocol here describes how the Fourier analysis technique, differential dynamic microscopy (DDM), can quantify the dynamics of biopolymer networks and is particularly well suited for studies of cytoskeleton networks. DDM works on time sequences of images acquired using a range of microscopy modalities, including laser-scanning confocal, widefield fluorescence, and brightfield imaging. From such image sequences, one can extract characteristic decorrelation times of density fluctuations across a span of wave vectors. A user-friendly, open-source Python package to perform DDM analysis is also developed. With this package, one can measure the dynamics of labeled cytoskeleton components or of embedded tracer particles, as demonstrated here with data of intermediate filament (vimentin) networks and active actin-microtubule networks. Users with no prior programming or image processing experience will be able to perform DDM using this software package and associated documentation.
Quantifying Cytoskeleton Dynamics Using Differential Dynamic Microscopy.
利用差分动态显微镜定量分析细胞骨架动力学
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作者:Verwei Hannah N, Lee Gloria, Leech Gregor, Petitjean Irene Istúriz, Koenderink Gijsje H, Robertson-Anderson Rae M, McGorty Ryan James
| 期刊: | Jove-Journal of Visualized Experiments | 影响因子: | 1.000 |
| 时间: | 2022 | 起止号: | 2022 Jun 15; (184):10 |
| doi: | 10.3791/63931 | 研究方向: | 细胞生物学 |
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