Fragmentomics features of cell-free DNA represent promising non-invasive biomarkers for cancer diagnosis. A lack of systematic evaluation of biases in feature quantification hinders the adoption of such applications. We compare features derived from whole-genome sequencing of ten healthy donors using nine library kits and ten data-processing routes and validated in 1182 plasma samples from published studies. Our results clarify the variations from library preparation and feature quantification methods. We design the Trim Align Pipeline and cfDNAPro R package as unified interfaces for data pre-processing, feature extraction, and visualization to standardize multi-modal feature engineering and integration for machine learning.
A standardized framework for robust fragmentomic feature extraction from cell-free DNA sequencing data.
一种从无细胞DNA测序数据中稳健提取片段组特征的标准化框架
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作者:Wang Haichao, Mennea Paulius D, Chan Yu Kiu Elkie, Cheng Zhao, Neofytou Maria C, Surani Arif Anwer, Vijayaraghavan Aadhitthya, Ditter Emma-Jane, Bowers Richard, Eldridge Matthew D, Shcherbo Dmitry S, Smith Christopher G, Markowetz Florian, Cooper Wendy N, Kaplan Tommy, Rosenfeld Nitzan, Zhao Hui
| 期刊: | Genome Biology | 影响因子: | 9.400 |
| 时间: | 2025 | 起止号: | 2025 May 23; 26(1):141 |
| doi: | 10.1186/s13059-025-03607-5 | 研究方向: | 细胞生物学 |
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