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首页> 外文期刊>Frontiers in Medicine >Advances in Imaging Modalities, Artificial Intelligence, and Single Cell Biomarker Analysis, and Their Applications in Cytopathology
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Advances in Imaging Modalities, Artificial Intelligence, and Single Cell Biomarker Analysis, and Their Applications in Cytopathology

机译:成像模态,人工智能和单细胞生物标志物分析的进步及其在缩影病理学中的应用

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Several advances in recent decades in digital imaging, artificial intelligence, and multiplex modalities have improved our ability to automatically analyze and interpret imaging data. Imaging technologies such as optical coherence tomography, optical projection tomography, and quantitative phase microscopy allow analysis of tissues and cells in 3-dimensions and with subcellular granularity. Improvements in computer vision and machine learning have made algorithms more successful in automatically identifying important features to diagnose disease. Many new automated multiplex modalities such as antibody barcoding with cleavable DNA (ABCD), single cell analysis for tumor phenotyping (SCANT), fast analytical screening technique fine needle aspiration (FAST-FNA), and portable fluorescence-based image cytometry analyzer (CytoPAN) are under investigation. These have shown great promise in their ability to automatically analyze several biomarkers concurrently with high sensitivity, even in paucicellular samples, lending themselves well as tools in FNA. Not yet widely adopted for clinical use, many have successfully been applied to human samples. Once clinically validated, some of these technologies are poised to change the routine practice of cytopathology.
机译:近几十年来数字成像,人工智能和多路复用方式的几个进步提高了我们自动分析和解释成像数据的能力。诸如光学相干断层扫描,光学投影断层扫描和定量相位显微镜等成像技术允许分析3维和亚细胞粒度的组织和细胞。计算机视觉和机器学习的改进使算法更成功地自动识别诊断疾病的重要特征。许多新的自动化多重模型,如抗体条形码,可切割的DNA(ABCD),肿瘤表型的单细胞分析(Scant),快速分析筛查技术细针抽吸(Fask-FNA),以及便携式荧光图像细胞计数分析仪(Cytopan)正在调查中。这些在他们能够在高灵敏度同时分析几种生物标志物的能力方面表现出很大的承诺,即使在假象样品中,也可以作为FNA的工具贷款。尚未广泛用于临床用途,许多人已成功应用于人类样品。一旦临床验证,其中一些技术就是改变缩细胞病变的常规实践。

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