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深度IFC:利用深度学习对成像流式细胞术数据中的血细胞进行虚拟荧光标记。

DeepIFC: Virtual fluorescent labeling of blood cells in imaging flow cytometry data with deep learning.

作者信息

Timonen Veera A, Kerkelä Erja, Impola Ulla, Penna Leena, Partanen Jukka, Kilpivaara Outi, Arvas Mikko, Pitkänen Esa

机构信息

Institute for Molecular Medicine Finland (FIMM), Helsinki Institute of Life Science (HiLIFE), University of Helsinki, Helsinki, Finland.

Applied Tumor Genomics Research Program, Research Programs Unit, Faculty of Medicine, University of Helsinki, Helsinki, Finland.

出版信息

Cytometry A. 2023 Oct;103(10):807-817. doi: 10.1002/cyto.a.24770. Epub 2023 Jun 20.

Abstract

Imaging flow cytometry (IFC) combines flow cytometry with microscopy, allowing rapid characterization of cellular and molecular properties via high-throughput single-cell fluorescent imaging. However, fluorescent labeling is costly and time-consuming. We present a computational method called DeepIFC based on the Inception U-Net neural network architecture, able to generate fluorescent marker images and learn morphological features from IFC brightfield and darkfield images. Furthermore, the DeepIFC workflow identifies cell types from the generated fluorescent images and visualizes the single-cell features generated in a 2D space. We demonstrate that rarer cell types are predicted well when a balanced data set is used to train the model, and the model is able to recognize red blood cells not seen during model training as a distinct entity. In summary, DeepIFC allows accurate cell reconstruction, typing and recognition of unseen cell types from brightfield and darkfield images via virtual fluorescent labeling.

摘要

成像流式细胞术(IFC)将流式细胞术与显微镜技术相结合,通过高通量单细胞荧光成像实现对细胞和分子特性的快速表征。然而,荧光标记成本高且耗时。我们提出了一种基于Inception U-Net神经网络架构的计算方法,称为DeepIFC,它能够生成荧光标记图像,并从IFC明场和暗场图像中学习形态特征。此外,DeepIFC工作流程可从生成的荧光图像中识别细胞类型,并可视化在二维空间中生成的单细胞特征。我们证明,当使用平衡数据集训练模型时,稀有细胞类型能够得到很好的预测,并且该模型能够将模型训练期间未见过的红细胞识别为一个独特的实体。总之,DeepIFC通过虚拟荧光标记,能够从明场和暗场图像中准确地重建细胞、识别细胞类型以及识别未见过的细胞类型。

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