代谢组学
精密医学
深度学习
质谱法
计算机科学
仿形(计算机编程)
人工智能
原始数据
再现性
液相色谱-质谱法
色谱法
医学
化学
病理
操作系统
程序设计语言
作者
Xiaotao Shen,Wei Shao,Chuchu Wang,Liang Liang,Songjie Chen,Sai Zhang,Mirabela Rusu,M Snyder
摘要
Liquid chromatography-mass spectrometry (LC-MS)-based untargeted metabolomics provides systematic profiling of metabolic. Yet, its applications in precision medicine (disease diagnosis) have been limited by several challenges, including metabolite identification, information loss and low reproducibility. Here, we present the deep-learning-based Pseudo-Mass Spectrometry Imaging (deepPseudoMSI) project (https://www.deeppseudomsi.org/), which converts LC-MS raw data to pseudo-MS images and then processes them by deep learning for precision medicine, such as disease diagnosis. Extensive tests based on real data demonstrated the superiority of deepPseudoMSI over traditional approaches and the capacity of our method to achieve an accurate individualized diagnosis. Our framework lays the foundation for future metabolic-based precision medicine.
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