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基于外泌体 SERS-AI 的单一检测用于多种癌症类型的早期癌症诊断。

Single test-based diagnosis of multiple cancer types using Exosome-SERS-AI for early stage cancers.

机构信息

EXoPERT Corporation, Seoul, 02580, Republic of Korea.

Department of Thoracic and Cardiovascular Surgery, College of Medicine, Korea University Guro Hospital, Seoul, 08308, Republic of Korea.

出版信息

Nat Commun. 2023 Mar 24;14(1):1644. doi: 10.1038/s41467-023-37403-1.

Abstract

Early cancer detection has significant clinical value, but there remains no single method that can comprehensively identify multiple types of early-stage cancer. Here, we report the diagnostic accuracy of simultaneous detection of 6 types of early-stage cancers (lung, breast, colon, liver, pancreas, and stomach) by analyzing surface-enhanced Raman spectroscopy profiles of exosomes using artificial intelligence in a retrospective study design. It includes classification models that recognize signal patterns of plasma exosomes to identify both their presence and tissues of origin. Using 520 test samples, our system identified cancer presence with an area under the curve value of 0.970. Moreover, the system classified the tumor organ type of 278 early-stage cancer patients with a mean area under the curve of 0.945. The final integrated decision model showed a sensitivity of 90.2% at a specificity of 94.4% while predicting the tumor organ of 72% of positive patients. Since our method utilizes a non-specific analysis of Raman signatures, its diagnostic scope could potentially be expanded to include other diseases.

摘要

早期癌症检测具有重要的临床价值,但目前尚无单一方法能够全面识别多种早期癌症。在这里,我们通过使用人工智能分析外泌体表面增强拉曼光谱谱图,在回顾性研究设计中报告了同时检测 6 种早期癌症(肺、乳腺、结肠、肝、胰腺和胃)的诊断准确性。该方法包括识别血浆外泌体信号模式的分类模型,以识别其存在和组织来源。使用 520 个测试样本,我们的系统以 0.970 的曲线下面积值识别出癌症的存在。此外,该系统对 278 名早期癌症患者的肿瘤器官类型进行了分类,平均曲线下面积为 0.945。最终的综合决策模型在预测 72%的阳性患者的肿瘤器官时,表现出 90.2%的灵敏度和 94.4%的特异性。由于我们的方法利用了拉曼特征的非特异性分析,因此其诊断范围有可能扩展到其他疾病。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8bfb/10039041/593793631826/41467_2023_37403_Fig1_HTML.jpg

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