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Updated: Mar 18, 2026

Detection of Cell-Free DNA in Blood Plasma Samples of Cancer Patients
Published on: September 9, 2020
Origins, structures, and functions of circulating DNA in oncology
A R Thierry1, S El Messaoudi2, P B Gahan2
1IRCM, Institut de Recherche en Cancérologie de Montpellier, INSERM U1194, F-34298, Montpellier, France. alain.thierry@inserm.fr.
Abstract:
While various clinical applications especially in oncology are now in progress such as diagnosis, prognosis, therapy monitoring, or patient follow-up, the determination of structural characteristics of cell-free circulating DNA (cirDNA) are still being researched. Nevertheless, some specific structures have been identified and cirDNA has been shown to be composed of many "kinds." This structural description goes hand-in-hand with the mechanisms of its origins such as apoptosis, necrosis, active release, phagocytosis, and exocytose. There are multiple structural forms of cirDNA depending upon the mechanism of release: particulate structures (exosomes, microparticles, apoptotic bodies) or macromolecular structures (nucleosomes, virtosomes/proteolipidonucleic acid complexes, DNA traps, links with serum proteins or to the cell-free membrane parts). In addition, cirDNA concerns both nuclear and/or mitochondrial DNA with both species exhibiting different structural characteristics that potentially reveal different forms of biological stability or diagnostic significance. This review focuses on the origins, structures and functional aspects that are paradoxically less well described in the literature while numerous reviews are directed to the clinical application of cirDNA. Differentiation of the various structures and better knowledge of the fate of cirDNA would considerably expand the diagnostic power of cirDNA analysis especially with regard to the patient follow-up enlarging the scope of personalized medicine. A better understanding of the subsequent fate of cirDNA would also help in deciphering its functional aspects such as their capacity for either genometastasis or their pro-inflammatory and immunological effects.
Insights
Cell-free circulating DNA (cirDNA) has diverse structures and origins, crucial for understanding its diagnostic potential. Further research into cirDNA structure and fate will enhance personalized medicine and cancer patient follow-up.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Cell-free circulating DNA (cirDNA) shows promise in clinical oncology for diagnosis, prognosis, and monitoring.
- Despite clinical applications, the structural characteristics and origins of cirDNA remain under active investigation.
Purpose of the Study:
- To review the origins, structures, and functional aspects of cirDNA.
- To highlight the need for better understanding of cirDNA structure and fate to expand its diagnostic utility.
Main Methods:
- Literature review focusing on cirDNA origins, structures, and functions.
- Analysis of different cirDNA structural forms (particulate, macromolecular) and their release mechanisms.
- Comparison of nuclear and mitochondrial cirDNA structural characteristics.
Main Results:
- cirDNA exhibits diverse structures arising from various release mechanisms (apoptosis, necrosis, active release, etc.).
- Structural forms include particulate (exosomes, microparticles) and macromolecular (nucleosomes, DNA-protein complexes).
- Both nuclear and mitochondrial cirDNA have distinct structures, potentially influencing stability and diagnostic significance.
Conclusions:
- Differentiating cirDNA structures and understanding their fate are critical for advancing diagnostic power.
- Improved knowledge of cirDNA will enhance patient follow-up and personalized medicine in oncology.
- Deciphering cirDNA's functional roles, including genometastasis and immune effects, requires further investigation.
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