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Updated: Mar 17, 2026

Detection of Cell-Free DNA in Blood Plasma Samples of Cancer Patients
Published on: September 9, 2020
Cell-free DNA (cfDNA): Clinical Significance and Utility in Cancer Shaped By Emerging Technologies
Stanislav Volik1, Miguel Alcaide2, Ryan D Morin3
1Vancouver Prostate Centre, Vancouver, British Columbia, Canada.
Abstract:
Precision oncology is predicated upon the ability to detect specific actionable genomic alterations and to monitor their adaptive evolution during treatment to counter resistance. Because of spatial and temporal heterogeneity and comorbidities associated with obtaining tumor tissues, especially in the case of metastatic disease, traditional methods for tumor sampling are impractical for this application. Known to be present in the blood of cancer patients for decades, cell-free DNA (cfDNA) is beginning to inform on tumor genetics, tumor burden, and mechanisms of progression and drug resistance. This substrate is amenable for inexpensive noninvasive testing and thus presents a viable approach to serial sampling for screening and monitoring tumor progression. The fragmentation, low yield, and variable admixture of normal DNA present formidable technical challenges for realization of this potential. This review summarizes the history of cfDNA discovery, its biological properties, and explores emerging technologies for clinically relevant sequence-based analysis of cfDNA in cancer patients. Molecular barcoding (or Unique Molecular Identifier, UMI)-based methods currently appear to offer an optimal balance between sensitivity, flexibility, and cost and constitute a promising approach for clinically relevant assays for near real-time monitoring of treatment-induced mutational adaptations to guide evidence-based precision oncology. Mol Cancer Res; 14(10); 898-908. ©2016 AACR.
Insights
Cell-free DNA (cfDNA) in blood offers a noninvasive method for monitoring cancer genetics and treatment resistance. Molecular barcoding techniques show promise for sensitive, real-time analysis to guide precision oncology.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Precision oncology requires monitoring tumor genetics and resistance.
- Traditional tumor sampling is impractical for serial monitoring, especially in metastatic disease.
- Cell-free DNA (cfDNA) in blood offers a potential noninvasive alternative.
Purpose of the Study:
- To review the history and biological properties of cfDNA.
- To explore emerging technologies for cfDNA analysis in cancer patients.
- To identify optimal methods for clinical application in precision oncology.
Main Methods:
- Review of historical data on cfDNA discovery and properties.
- Exploration of emerging sequence-based technologies for cfDNA analysis.
- Evaluation of molecular barcoding (Unique Molecular Identifier, UMI) methods.
Main Results:
- cfDNA presents challenges including fragmentation, low yield, and normal DNA admixture.
- Molecular barcoding (UMI) methods offer a balance of sensitivity, flexibility, and cost.
- These methods are promising for near real-time monitoring of treatment adaptations.
Conclusions:
- cfDNA analysis is a viable approach for serial sampling in cancer screening and monitoring.
- Emerging technologies, particularly UMI-based methods, enable clinically relevant sequence-based analysis.
- Noninvasive cfDNA monitoring can guide evidence-based precision oncology by tracking treatment-induced mutational adaptations.

