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利用三次谐波显微镜和深度学习技术快速进行术中基于组织学的胶质瘤诊断。

Fast intraoperative histology-based diagnosis of gliomas with third harmonic generation microscopy and deep learning.

机构信息

Department of Physics and Astronomy, Vrije Universiteit Amsterdam, Amsterdam, The Netherlands.

Department of Neurosurgery, Amsterdam UMC location VU University Medical Center, Amsterdam, The Netherlands.

出版信息

Sci Rep. 2022 Jul 5;12(1):11334. doi: 10.1038/s41598-022-15423-z.

Abstract

Management of gliomas requires an invasive treatment strategy, including extensive surgical resection. The objective of the neurosurgeon is to maximize tumor removal while preserving healthy brain tissue. However, the lack of a clear tumor boundary hampers the neurosurgeon's ability to accurately detect and resect infiltrating tumor tissue. Nonlinear multiphoton microscopy, in particular higher harmonic generation, enables label-free imaging of excised brain tissue, revealing histological hallmarks within seconds. Here, we demonstrate a real-time deep learning-based pipeline for automated glioma image analysis, matching video-rate image acquisition. We used a custom noise detection scheme, and a fully-convolutional classification network, to achieve on average 79% binary accuracy, 0.77 AUC and 0.83 mean average precision compared to the consensus of three pathologists, on a preliminary dataset. We conclude that the combination of real-time imaging and image analysis shows great potential for intraoperative assessment of brain tissue during tumor surgery.

摘要

脑胶质瘤的治疗需要采用侵入性的治疗策略,包括广泛的手术切除。神经外科医生的目标是在最大限度地切除肿瘤的同时保留健康的脑组织。然而,由于缺乏明确的肿瘤边界,这阻碍了神经外科医生准确检测和切除浸润性肿瘤组织的能力。非线性多光子显微镜,特别是高阶谐波产生,能够对切除的脑组织进行无标记成像,在几秒钟内揭示组织学特征。在这里,我们展示了一种基于实时深度学习的自动化脑胶质瘤图像分析流水线,与视频帧率的图像采集匹配。我们使用了一种自定义的噪声检测方案和一个全卷积分类网络,在初步数据集上,与三位病理学家的共识相比,平均达到了 79%的二分类准确率、0.77 的 AUC 和 0.83 的平均精度。我们得出结论,实时成像和图像分析的结合显示出在肿瘤手术中对脑组织进行术中评估的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d22/9256596/bd3c05ce59fb/41598_2022_15423_Fig1_HTML.jpg

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