Multimodal analysis of methylomics and fragmentomics in plasma cell-free DNA for multi-cancer early detection and localization
Nguyen, V. T. C.; Nguyen, T. H.; Doan, N. N. T.; Pham, T. M. Q.; Nguyen, G. T. H.; Nguyen, T. D.; Tran, T. T. T.; Vo, D. L.; Phan, T. H.; Jasmine, T. X.; Nguyen, V. C.; Nguyen, H. T.; Nguyen, T. V.; Nguyen, T. H. H.; Huynh, L. A. K.; Tran, T. H.; Dang, Q. T.; Doan, T. N.; Tran, A. M.; Nguyen, V. H.; Nguyen, T. A. V.; Tran, Q. D.; Pham, T. T. T.; Ho, T. D.; Nguyen, B. T.; Nguyen, T. N. V.; Nguyen, T. D.; Phu, D. T. B.; Phan, B. H. H.; Vo, T. L.; Nai, T. H. T.; Tran, T. T.; Truong, M. H.; Tran, N. C.; Le, T. K.; Tran, T. H. T.; Duong, M. L.; Bach, H. P. T.; Kim, V. V.; Pham, T. A.; Tran, D. H.;
Show abstract
Despite their promise, circulating tumor DNA (ctDNA)-based assays for multi-cancer early detection face challenges in test performance, due mostly to the limited abundance of ctDNA and its inherent variability. To address these challenges, published assays to date demanded a very high-depth sequencing, resulting in an elevated price of test. Herein, we developed a multimodal assay called SPOT-MAS (Screening for the Presence Of Tumor by Methylation And Size) to simultaneously profile methylomics, fragmentomics, copy number, and end motifs in a single workflow using targeted and shallow genome-wide sequencing ([~]0.55X) of cell-free DNA. We applied SPOT-MAS to 738 nonmetastatic patients with breast, colorectal, gastric, lung and liver cancer, and 1,550 healthy controls. We then employed machine learning to extract multiple cancer and tissue-specific signatures for detecting and locating cancer. SPOT-MAS successfully detected the five cancer types with a sensitivity of 72.4% at 97.0% specificity. The sensitivities for detecting early-stage cancers were 62.3% and 73.9% for stage I and II, respectively, increasing to 88.3% for nonmetastatic stage IIIA. For tumor-of-origin, our assay achieved an accuracy of 0.7. Our study demonstrates comparable performance to other ctDNA-based assays while requiring significantly lower sequencing depth, making it economically feasible for population-wide screening.
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