Machine learning unveils an immune-related DNA methylation profile in germline DNA from breast cancer patients

被引:0
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作者
Lee, Ning Yuan [1 ]
Hum, Melissa [1 ]
Tan, Guek Peng [2 ]
Seah, Ai Choo [3 ]
Ong, Pei-Yi [4 ]
Kin, Patricia T. [3 ]
Lim, Chia Wei [5 ]
Samol, Jens [6 ,7 ]
Tan, Ngiap Chuan [3 ,8 ]
Law, Hai-Yang [2 ]
Tan, Min-Han [9 ]
Lee, Soo-Chin [4 ,10 ,11 ]
Ang, Peter [12 ]
Lee, Ann S. G. [1 ,13 ,14 ]
机构
[1] Natl Canc Ctr Singapore, Div Cellular & Mol Res, 30 Hosp Blvd, Singapore 168583, Singapore
[2] KK Womens & Childrens Hosp, DNA Diagnost & Res Lab, 100 Bukit Timah Rd, Singapore 229899, Singapore
[3] SingHlth Polyclin, 167 Jalan Bukit Merah Connect One Tower 5, Singapore 150167, Singapore
[4] Natl Univ Hlth Syst, Natl Univ Canc Inst NCIS, Dept Haematol Oncol, 5 Lower Kent Ridge Rd, Singapore 119074, Singapore
[5] Tan Tock Seng Hosp, Dept Personalised Med, 11 Jalan Tan Tock Seng, Singapore 308433, Singapore
[6] Tan Tock Seng Hosp, Med Oncol Dept, 11 Jalan Tan Tock Seng, Singapore 308433, Singapore
[7] Johns Hopkins Univ, Baltimore, MD 21218 USA
[8] Duke NUS Med Sch, SingHlth Duke NUS Family Med Acad Clin Programme, 8 Coll Rd, Singapore 169857, Singapore
[9] Lucence Diagnost Pte Ltd, 211 Henderson Rd, Singapore 159552, Singapore
[10] Natl Univ Singapore, Yong Loo Lin Sch Med, Dept Med, 10 Med Dr, Singapore 117597, Singapore
[11] Natl Univ Singapore, Canc Sci Inst Singapore CSI, 14 Med Dr, Singapore 117599, Singapore
[12] Gleneagles Med Ctr, Oncocare Canc Ctr, 6 Napier Rd, Singapore 258499, Singapore
[13] Duke NUS Grad Med Sch, SingHlth Duke NUS Oncol Acad Clin Programme ONCO A, 8 Coll Rd, Singapore 169857, Singapore
[14] Natl Univ Singapore, Yong Loo Lin Sch Med, Dept Physiol, 2 Med Dr, Singapore 117593, Singapore
基金
英国医学研究理事会;
关键词
Breast cancer; DNA methylation; Peripheral blood; Early detection; Liquid biopsy; Biomarker; Machine learning; TH17; CELLS; INTERLEUKIN-12; MAMMOGRAMS; CYTOKINE; PACKAGE;
D O I
10.1186/s13148-024-01674-2
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background There is an unmet need for precise biomarkers for early non-invasive breast cancer detection. Here, we aimed to identify blood-based DNA methylation biomarkers that are associated with breast cancer.Methods DNA methylation profiling was performed for 524 Asian Chinese individuals, comprising 256 breast cancer patients and 268 age-matched healthy controls, using the Infinium MethylationEPIC array. Feature selection was applied to 649,688 CpG sites in the training set. Predictive models were built by training three machine learning models, with performance evaluated on an independent test set. Enrichment analysis to identify transcription factors binding to regions associated with the selected CpG sites and pathway analysis for genes located nearby were conducted.Results A methylation profile comprising 51 CpGs was identified that effectively distinguishes breast cancer patients from healthy controls achieving an AUC of 0.823 on an independent test set. Notably, it outperformed all four previously reported breast cancer-associated methylation profiles. Enrichment analysis revealed enrichment of genomic loci associated with the binding of immune modulating AP-1 transcription factors, while pathway analysis of nearby genes showed an overrepresentation of immune-related pathways.Conclusion This study has identified a breast cancer-associated methylation profile that is immune-related to potential for early cancer detection.
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页数:11
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