光学镊子
微流控
全息术
光学力
显微镜
材料科学
粒子(生态学)
纳米技术
镊子
光电子学
光学
物理
海洋学
地质学
作者
Kai Uhrig,Rainer Kurre,Christian Schmitz,Jennifer E. Curtis,Tamás Haraszti,Anabel E.‐M. Clemen,Joachim P. Spatz
出处
期刊:Lab on a Chip
[Royal Society of Chemistry]
日期:2009-01-01
卷期号:9 (5): 661-661
被引量:40
摘要
Holographic optical tweezers (HOT) are a versatile technology, with which complex arrays and movements of optical traps can be realized to manipulate multiple microparticles in parallel and to measure the forces affecting them in the piconewton range. We report on the combination of HOT with a fluorescence microscope and a stop-flow, multi-channel microfluidic device. The integration of a high-speed camera into the setup allows for the calibration of all the traps simultaneously both using Boltzmann statistics or the power spectrum density of the particle diffusion within the optical traps. This setup permits complete spatial, chemical and visual control of the microenvironment applicable to probing chemo-mechanical properties of cellular or subcellular structures. As an example we constructed a biomimetic, quasi-two-dimensional actin network on an array of trapped polystyrene microspheres inside the microfluidic chamber. During crosslinking of the actin filaments by Mg(2+) ions, we observe the build up of mechanical tension throughout the actin network. Thus, we demonstrate how our integrated HOT-microfluidics platform can be used as a reconfigurable force sensor array with piconewton resolution to investigate chemo-mechanical processes.
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