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每秒实时通量超过100万个事件的成像流式细胞术。

Imaging flow cytometry with a real-time throughput beyond 1,000,000 events per second.

作者信息

Zhou Jiehua, Mei Liye, Yu Mingjie, Ma Xiao, Hou Dan, Yin Zhuo, Liu Xun, Ding Yan, Yang Kaining, Xiao Ruidong, Yuan Xiandan, Weng Yueyun, Long Mengping, Hu Taobo, Hou Jinxuan, Xu Yu, Tao Liang, Mei Sisi, Shen Hui, Yalikun Yaxiaer, Zhou Fuling, Wang Liang, Wang Du, Liu Sheng, Lei Cheng

机构信息

The Institute of Technological Sciences, Wuhan University, Wuhan, 430072, China.

School of Computer Science, Hubei University of Technology, Wuhan, 430068, China.

出版信息

Light Sci Appl. 2025 Feb 10;14(1):76. doi: 10.1038/s41377-025-01754-9.

Abstract

Imaging flow cytometry (IFC) combines the imaging capabilities of microscopy with the high throughput of flow cytometry, offering a promising solution for high-precision and high-throughput cell analysis in fields such as biomedicine, green energy, and environmental monitoring. However, due to limitations in imaging framerate and real-time data processing, the real-time throughput of existing IFC systems has been restricted to approximately 1000-10,000 events per second (eps), which is insufficient for large-scale cell analysis. In this work, we demonstrate IFC with real-time throughput exceeding 1,000,000 eps by integrating optical time-stretch (OTS) imaging, microfluidic-based cell manipulation, and online image processing. Cells flowing at speeds up to 15 m/s are clearly imaged with a spatial resolution of 780 nm, and images of each individual cell are captured, stored, and analyzed. The capabilities and performance of our system are validated through the identification of malignancies in clinical colorectal samples. This work sets a new record for throughput in imaging flow cytometry, and we believe it has the potential to revolutionize cell analysis by enabling highly efficient, accurate, and intelligent measurement.

摘要

成像流式细胞术(IFC)将显微镜的成像能力与流式细胞术的高通量相结合,为生物医学、绿色能源和环境监测等领域的高精度、高通量细胞分析提供了一个有前景的解决方案。然而,由于成像帧率和实时数据处理的限制,现有IFC系统的实时通量被限制在每秒约1000 - 10000个事件(eps),这对于大规模细胞分析来说是不够的。在这项工作中,我们通过集成光学时间拉伸(OTS)成像、基于微流体的细胞操控和在线图像处理,展示了实时通量超过1000000 eps的IFC。以高达15米/秒速度流动的细胞以780纳米的空间分辨率被清晰成像,并且每个单独细胞的图像被捕获、存储和分析。我们系统的能力和性能通过对临床结直肠样本中的恶性肿瘤进行识别得到了验证。这项工作创造了成像流式细胞术通量的新记录,并且我们相信它有潜力通过实现高效、准确和智能的测量来彻底改变细胞分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c419/11808109/f8b8a165f4ca/41377_2025_1754_Fig1_HTML.jpg

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