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分子双生子人工智能平台整合多组学数据,预测胰腺导管腺癌患者的结局。

The Molecular Twin artificial-intelligence platform integrates multi-omic data to predict outcomes for pancreatic adenocarcinoma patients.

机构信息

Department of Medicine (Medical Oncology), Cedars-Sinai Medical Center, Los Angeles, CA, USA.

Samuel Oschin Comprehensive Cancer Institute, Cedars-Sinai Medical Center, Los Angeles, CA, USA.

出版信息

Nat Cancer. 2024 Feb;5(2):299-314. doi: 10.1038/s43018-023-00697-7. Epub 2024 Jan 22.

Abstract

Contemporary analyses focused on a limited number of clinical and molecular biomarkers have been unable to accurately predict clinical outcomes in pancreatic ductal adenocarcinoma. Here we describe a precision medicine platform known as the Molecular Twin consisting of advanced machine-learning models and use it to analyze a dataset of 6,363 clinical and multi-omic molecular features from patients with resected pancreatic ductal adenocarcinoma to accurately predict disease survival (DS). We show that a full multi-omic model predicts DS with the highest accuracy and that plasma protein is the top single-omic predictor of DS. A parsimonious model learning only 589 multi-omic features demonstrated similar predictive performance as the full multi-omic model. Our platform enables discovery of parsimonious biomarker panels and performance assessment of outcome prediction models learning from resource-intensive panels. This approach has considerable potential to impact clinical care and democratize precision cancer medicine worldwide.

摘要

目前的分析集中在少数临床和分子生物标志物上,无法准确预测胰腺导管腺癌的临床结果。在这里,我们描述了一个名为“Molecular Twin”的精准医疗平台,它由先进的机器学习模型组成,并使用该平台分析了一组 6363 名接受胰腺导管腺癌切除术的患者的临床和多组学分子特征数据集,以准确预测疾病生存(DS)。我们表明,全多组学模型具有最高的 DS 预测准确性,而血浆蛋白是 DS 的最佳单组学预测因子。仅学习 589 个多组学特征的简约模型也表现出与全多组学模型相似的预测性能。我们的平台可以发现简约的生物标志物组合,并评估从资源密集型组合中学习的结果预测模型的性能。这种方法具有很大的潜力,可以影响全球的临床护理和普及精准癌症医学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d095/10899109/39c50130a2f8/43018_2023_697_Fig1_HTML.jpg

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