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基于 cfDNA 甲基化的原发灶不明癌组织分类器。

A cfDNA methylation-based tissue-of-origin classifier for cancers of unknown primary.

机构信息

Nucleic Acid Biomarker Team, Cancer Research UK National Biomarker Centre, The University of Manchester, Manchester, UK.

Division of Cancer Sciences, Faculty of Biology, Medicine and Health, The University of Manchester and The Christie NHS Foundation Trust, Manchester Academic Health Science Centre, Manchester, UK.

出版信息

Nat Commun. 2024 Apr 17;15(1):3292. doi: 10.1038/s41467-024-47195-7.

Abstract

Cancers of Unknown Primary (CUP) remains a diagnostic and therapeutic challenge due to biological heterogeneity and poor responses to standard chemotherapy. Predicting tissue-of-origin (TOO) molecularly could help refine this diagnosis, with tissue acquisition barriers mitigated via liquid biopsies. However, TOO liquid biopsies are unexplored in CUP cohorts. Here we describe CUPiD, a machine learning classifier for accurate TOO predictions across 29 tumour classes using circulating cell-free DNA (cfDNA) methylation patterns. We tested CUPiD on 143 cfDNA samples from patients with 13 cancer types alongside 27 non-cancer controls, with overall sensitivity of 84.6% and TOO accuracy of 96.8%. In an additional cohort of 41 patients with CUP CUPiD predictions were made in 32/41 (78.0%) cases, with 88.5% of the predictions clinically consistent with a subsequent or suspected primary tumour diagnosis, when available (23/26 patients). Combining CUPiD with cfDNA mutation data demonstrated potential diagnosis re-classification and/or treatment change in this hard-to-treat cancer group.

摘要

由于生物学异质性和对标准化疗的反应不佳,不明原发癌(CUP)仍然是一个诊断和治疗上的挑战。通过液体活检来减轻组织获取的障碍,可以对肿瘤起源组织(TOO)进行分子预测,从而帮助明确诊断。然而,在 CUP 队列中,尚未探索 TOO 的液体活检。在这里,我们描述了 CUPiD,这是一种机器学习分类器,可使用循环游离 DNA(cfDNA)甲基化模式对 29 种肿瘤类型进行准确的 TOO 预测。我们在 13 种癌症类型的 143 个 cfDNA 样本和 27 个非癌症对照中测试了 CUPiD,总体敏感性为 84.6%,TOO 准确性为 96.8%。在另外一组 41 例 CUP 患者中,CUPiD 预测在 41 例中的 32 例(78.0%)中进行,当有后续或疑似原发肿瘤诊断时(26 例中的 23 例),88.5%的预测与临床一致。将 CUPiD 与 cfDNA 突变数据相结合,在这一难以治疗的癌症组中显示出了潜在的诊断重新分类和/或治疗改变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0db/11024142/f44614998c96/41467_2024_47195_Fig1_HTML.jpg

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