Lau Andy K S, Wong Terence T W, Ho Kenneth K Y, Tang Matthew T H, Chan Antony C S, Wei Xiaoming, Lam Edmund Y, Shum Ho Cheung, Wong Kenneth K Y, Tsia Kevin K
University of Hong Kong, Faculty of Engineering, Department of Electrical and Electronic Engineering, Pokfulam Road, Hong Kong, China.
University of Hong Kong, Faculty of Engineering, Department of Mechanical Engineering, Pokfulam Road, Hong Kong, China.
J Biomed Opt. 2014;19(7):76001. doi: 10.1117/1.JBO.19.7.076001.
Quantitative phase imaging (QPI) has been proven to be a powerful tool for label-free characterization of biological specimens. However, the imaging speed, largely limited by the image sensor technology, impedes its utility in applications where high-throughput screening and efficient big-data analysis are mandated. We here demonstrate interferometric time-stretch (iTS) microscopy for delivering ultrafast quantitative phase cellular and tissue imaging at an imaging line-scan rate >20 MHz—orders-of-magnitude faster than conventional QPI. Enabling an efficient time-stretch operation in the 1-μm wavelength window, we present an iTS microscope system for practical ultrafast QPI of fixed cells and tissue sections, as well as ultrafast flowing cells (at a flow speed of up to 8 m∕s). To the best of our knowledge, this is the first time that time-stretch imaging could reveal quantitative morphological information of cells and tissues with nanometer precision. As many parameters can be further extracted from the phase and can serve as the intrinsic biomarkers for disease diagnosis, iTS microscopy could find its niche in high-throughput and high-content cellular assays (e.g., imaging flow cytometry) as well as tissue refractometric imaging (e.g., whole-slide imaging for digital pathology).
定量相成像(QPI)已被证明是一种用于生物样本无标记表征的强大工具。然而,成像速度在很大程度上受图像传感器技术限制,这阻碍了它在需要高通量筛选和高效大数据分析的应用中的实用性。我们在此展示干涉时间拉伸(iTS)显微镜,它能够以大于20 MHz的成像线扫描速率实现超快定量相细胞和组织成像,比传统QPI快几个数量级。在1μm波长窗口实现高效的时间拉伸操作,我们展示了一种用于固定细胞和组织切片以及超快流动细胞(流速高达8 m∕s)的实际超快QPI的iTS显微镜系统。据我们所知,这是首次时间拉伸成像能够以纳米精度揭示细胞和组织的定量形态信息。由于许多参数可以从相位中进一步提取并可作为疾病诊断的内在生物标志物,iTS显微镜可以在高通量和高内涵细胞分析(例如成像流式细胞术)以及组织折射成像(例如数字病理学的全玻片成像)中找到其用武之地。