Identify gestational diabetes mellitus by deep learning model from cell-free DNA at the early gestation stage

被引:4
作者
Wang, Yipeng [1 ]
Sun, Pei [2 ]
Zhao, Zicheng [3 ]
Yan, Yousheng [1 ]
Yue, Wentao [4 ]
Yang, Kai
Liu, Ruixia [5 ]
Huang, Hui [6 ,7 ]
Wang, Yinan [8 ]
Chen, Yin [3 ]
Li, Nan [6 ]
Feng, Hailong [2 ]
Li, Jing [3 ]
Liu, Yifan [9 ]
Chen, Yujiao [10 ]
Shen, Bairong [11 ]
Zhao, Lijian [6 ,13 ]
Yin, Chenghong [12 ,14 ]
机构
[1] Capital Med Univ, Beijing Obstet & Gynecol Hosp, Prenatal Diagnost Ctr, Beijing, Peoples R China
[2] Beijing Clin Labs, BGI, BGI Shenzhen, Shenzhen, Peoples R China
[3] ByoRyn Suzhou Life Sci & Technol Co Ltd, Kunshan City, Peoples R China
[4] Capital Med Univ, Cent Lab, Beijing Obstet & Gynecol Hosp, Beijing, Peoples R China
[5] Capital Med Univ, Dept Cent Lab, Beijing, Peoples R China
[6] BGI Shenzhen, BGI Genom, Shenzhen, Peoples R China
[7] BGI Shenzhen, Clin Res Dept, BGI Genom, Shenzhen, Peoples R China
[8] Peking Univ, Shenzhen Hosp, Dept Obstet & Gynecol, Beijing, Peoples R China
[9] Beijing Obstet & Gynecol Hosp, Prenatal Diag Ctr, Beijing, Peoples R China
[10] Beijing Obstet & Gynecol Hosp, Beijing, Peoples R China
[11] Sichuan Univ, Inst Syst Genet, Frontiers Sci Ctr Dis Related Mol Network, West China Hosp, Chengdu 610041, Peoples R China
[12] Capital Med Univ, Beijing Obstet & Gynecol Hosp, Beijing, Peoples R China
[13] BGI Shenzhen, Comprehens Serv Dept, BGI Genom, Shenzhen 518083, Peoples R China
[14] Capital Med Univ, Beijing Obstet & Gynecol Hosp, Beijing Maternal & Child Hlth Care Hosp, Prenatal Diagnost Ctr, Beijing 100026, Peoples R China
关键词
gestational diabetes mellitus; deep learning; cell-free DNA; copy number variations; PREGNANCY; GLUTAMATE; MACROSOMIA; OBESITY; RISK;
D O I
10.1093/bib/bbad492
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Gestational diabetes mellitus (GDM) is a common complication of pregnancy, which has significant adverse effects on both the mother and fetus. The incidence of GDM is increasing globally, and early diagnosis is critical for timely treatment and reducing the risk of poor pregnancy outcomes. GDM is usually diagnosed and detected after 24 weeks of gestation, while complications due to GDM can occur much earlier. Copy number variations (CNVs) can be a possible biomarker for GDM diagnosis and screening in the early gestation stage. In this study, we proposed a machine-learning method to screen GDM in the early stage of gestation using cell-free DNA (cfDNA) sequencing data from maternal plasma. Five thousand and eighty-five patients from north regions of Mainland China, including 1942 GDM, were recruited. A non-overlapping sliding window method was applied for CNV coverage screening on low-coverage (similar to 0.2x) sequencing data. The CNV coverage was fed to a convolutional neural network with attention architecture for the binary classification. The model achieved a classification accuracy of 88.14%, precision of 84.07%, recall of 93.04%, F1-score of 88.33% and AUC of 96.49%. The model identified 2190 genes associated with GDM, including DEFA1, DEFA3 and DEFB1. The enriched gene ontology (GO) terms and KEGG pathways showed that many identified genes are associated with diabetes-related pathways. Our study demonstrates the feasibility of using cfDNA sequencing data and machine-learning methods for early diagnosis of GDM, which may aid in early intervention and prevention of adverse pregnancy outcomes.
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页数:13
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