微泡
重性抑郁障碍
萧条(经济学)
外体
诊断生物标志物
表面增强拉曼光谱
化学
拉曼光谱
生物标志物
内科学
心理学
精神科
医学
拉曼散射
小RNA
生物化学
基因
心情
物理
宏观经济学
光学
经济
作者
Hyunku Shin,Youbin Kang,Kwan Woo Choi,Seungmin Kim,Byung‐Joo Ham,Yeonho Choi
标识
DOI:10.1021/acs.analchem.3c00215
摘要
In vitro diagnosis using biomarkers for major depressive disorder (MDD) can offer considerable advantages in overcoming the lack of objective tests for depression and treating more patients. Plasma exosomes can be novel biomarkers for MDD based on their ability to pass through the blood-brain barrier and offer brain-related information. Here, we demonstrate a novel and precise MDD diagnosis using deep learning analysis and surface-enhanced Raman spectroscopy (SERS) of plasma exosomes. Our system is implemented based on 28,000 exosome SERS signals, providing sample-wise prediction results. Notably, this approach shows remarkable performance in predicting 70 test samples unused in the training step, with an area under the curve (AUC) of 0.939, a sensitivity of 91.4%, and a specificity of 88.6%. In addition, we confirm that the diagnostic scores were correlated with the degree of depression. These results show the utility of exosomes as novel biomarkers for MDD diagnosis and suggest a novel approach for prescreening techniques for psychiatric disorders.
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