Sencan Ikbal, Huang Brendan K, Bian Yong, Mis Emily, Khokha Mustafa K, Cao Hui, Choma Michael
Department of Radiology and Biomedical Imaging, Yale University, New Haven, CT 06511, USA; Current affiliation: MGH/HST Athinoula A. Martinos Center for Biomedical Imaging, Department of Radiology, Massachusetts General Hospital, Harvard Medical School, Charlestown, MA 02129, USA;
Biomedical Engineering, Yale University, New Haven, CT 06511, USA.
Biomed Opt Express. 2016 Oct 20;7(11):4674-4684. doi: 10.1364/BOE.7.004674. eCollection 2016 Nov 1.
We developed ultra-high-speed, phase-sensitive, full-field reflection interferometric confocal microscopy (FFICM) for the quantitative characterization of microscale biological motions and flows. We demonstrated 2D frame rates in excess of 1 kHz and pixel throughput rates up to 125 MHz. These fast FFICM frame rates were enabled by the use of a low spatial coherence, high-power laser source. Specifically, we used a dense vertical cavity surface emitting laser (VCSEL) array that synthesized low spatial coherence light through a large number of narrowband, mutually-incoherent emitters. Off-axis interferometry enabled single-shot acquisition of the complex-valued interferometric signal. We characterized the system performance (~2 μm lateral resolution, ~8 μm axial gating depth) with a well-known target. We also demonstrated the use of this highly parallelized confocal microscopy platform for visualization and quantification of cilia-driven surface flows and cilia beat frequency in an important animal model with >1 kHz frame rate. Such frame rates are needed to see large changes in local flow velocity over small distance (high shear flow), in this case, local flow around a single ciliated cell. More generally, our results are an important demonstration of low-spatial coherence, high-power lasers in high-performance, quantitative biomedical imaging.
我们开发了超高速、相敏、全场反射干涉共聚焦显微镜(FFICM),用于对微观生物运动和流动进行定量表征。我们展示了超过1 kHz的二维帧率和高达125 MHz的像素通量率。这些快速的FFICM帧率是通过使用低空间相干性、高功率激光源实现的。具体而言,我们使用了密集垂直腔面发射激光器(VCSEL)阵列,该阵列通过大量窄带、相互不相干的发射器合成低空间相干光。离轴干涉测量实现了复值干涉信号的单次采集。我们使用一个知名目标对系统性能(横向分辨率约为2μm,轴向选通深度约为8μm)进行了表征。我们还展示了这个高度并行化的共聚焦显微镜平台在重要动物模型中用于可视化和量化纤毛驱动的表面流动以及纤毛搏动频率,帧率>1 kHz。在这种情况下,例如单个纤毛细胞周围的局部流动,需要这样的帧率来观察小距离内局部流速的大幅变化(高剪切流)。更一般地说,我们的结果是低空间相干性、高功率激光器在高性能定量生物医学成像中的重要证明。