Immune Receptor Activation Laboratory, The Francis Crick Institute, London, United Kingdom; Institute of Immunity and Transplantation, Division of Infection and Immunity, University College London, London, United Kingdom.
Immune Receptor Activation Laboratory, The Francis Crick Institute, London, United Kingdom.
Biophys J. 2022 Jul 5;121(13):2538-2549. doi: 10.1016/j.bpj.2022.06.001. Epub 2022 Jun 3.
We present a three-dimensional (3D) imaging technique for the fast tracking of microscopic objects in a fluid environment. Our technique couples digital holographic microscopy with three-dimensional localization via parabolic masking. Compared with existing approaches, our method reconstructs 3D volumes from single-plane images, which greatly simplifies image acquisition, reduces the demand on microscope hardware, and facilitates tracking higher densities of microscopic particles while maintaining similar levels of precision. We demonstrate utility of this method in magnetic tweezer experiments, opening their use to multiplexed single-molecule force spectroscopy assays, which were previously limited by particle crowding and fast dissociation times. We propose that our technique will also be useful in other applications that involve the tracking of microscopic objects in three dimensions, such as studies of microorganism motility and 3D flow characterization of microfluidic devices.
我们提出了一种用于快速跟踪流体环境中微观物体的三维(3D)成像技术。我们的技术将数字全息显微镜与通过抛物线掩模进行的三维定位相结合。与现有方法相比,我们的方法从单平面图像重建 3D 体积,这大大简化了图像采集,降低了对显微镜硬件的要求,并在保持类似精度的同时,便于跟踪更高密度的微观粒子。我们在磁镊实验中证明了该方法的实用性,从而使其能够应用于以前因粒子拥挤和快速解离时间而受到限制的多路复用单分子力谱测定。我们提出,我们的技术在涉及三维微观物体跟踪的其他应用中也将是有用的,例如微生物运动研究和微流控器件的 3D 流动特性。