Submitted:
14 August 2024
Posted:
15 August 2024
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Scope and Objectives of the Review
3. The Emergence of Circulating Cell-Free DNA in Molecular Diagnostics
4. Basics of Circulating Cell-Free DNA (ccfDNA)
4.1. Definition and Overview
4.2. Historical Perspective and Evolution in Diagnostics
5. Molecular Characteristics of ccfDNA
5.1. Composition and Origins
5.2. Size Distribution and Fragmentation Patterns
5.3. Methylation Patterns and Genetic Signatures
6. Methodologies in ccfDNA Analysis
6.1. Genomic Sequencing Techniques
6.2. Bioinformatics Tools and Data Analysis
6.3. Challenges and Limitations in Current Methodologies
7. ccfDNA in Disease Diagnosis
7.1. Early Detection of Diseases
7.2. ccfDNA in Oncology:A Focus on Cancer Detection
7.3. Applications in Other Diseases
8. ccfDNA in Disease Prognosis and Therapeutic Monitoring
8.1. Prognostic Value in Various Diseases
8.2. Monitoring Treatment Efficacy
8.3. Predicting Disease Relapse
9. Dynamics of ccfDNA: Release and Clearance
9.1. Mechanisms of ccfDNA Release into the Bloodstream
9.2. Clearance Processes and Diagnostic Implications
10. ccfDNA in Personalized Medicine
10.1. Customizing Therapeutic Strategies
10.2. Liquid Biopsies: Advantages and Prospects
10.3. Ethical and Practical Considerations
11. Future Directions and Research Needs
11.1. Emerging Technologies and Innovations
11.2. Standardizing Protocols for Clinical Utility
11.3. Expanding the Horizons: Beyond Oncology
12. Conclusion
12.1. Summary of Key Findings
12.2. Potential Impact and Future Perspectives
Acknowledgments
Conflict of interest
Use of AI tools declaration
References
- Peng, Y.; Mei, W.; Ma, K.; Zeng, C. Circulating Tumor DNA and Minimal Residual Disease (MRD) in Solid Tumors: Current Horizons and Future Perspectives. Front. Oncol. 2021, 11. [Google Scholar] [CrossRef] [PubMed]
- van Zogchel, L.M.J.; van Wezel, E.M.; van Wijk, J.; Stutterheim, J.; Bruins, W.S.C.; Zappeij-Kannegieter, L.; Slager, T.J.E.; Schumacher-Kuckelkorn, R.; Verly, I.R.N.; van der Schoot, C.E.; et al. Hypermethylated RASSF1A as Circulating Tumor DNA Marker for Disease Monitoring in Neuroblastoma. JCO Precis. Oncol. 2020, 4, 291–306. [Google Scholar] [CrossRef] [PubMed]
- Kanamori, M.; Takami, H.; Suzuki, T.; Tominaga, T.; Kurihara, J.; Tanaka, S.; Hatazaki, S.; Nagane, M.; Matsuda, M.; Yoshino, A.; et al. Necessity for craniospinal irradiation of germinoma with positive cytology without spinal lesion on MR imaging—A controversy. Neuro-Oncology Adv. 2021, 3, vdab086. [Google Scholar] [CrossRef]
- Gaba, F.; Tipping, W.J.; Salji, M.; Faulds, K.; Graham, D.; Leung, H.Y. Raman Spectroscopy in Prostate Cancer: Techniques, Applications and Advancements. Cancers 2022, 14, 1535. [Google Scholar] [CrossRef] [PubMed]
- Tripathi, V.P.; Aneebuddin, M.K.; Alex, C.; Moharir, K. Evaluating Clinical Applications of Liquid Biopsy by Combining Circulating Tumor DNA and Tumor Cells. Curr. Res. Pharm. Sci. 2022. [Google Scholar] [CrossRef]
- Thakral, D.; Das, N.; Basnal, A.; Gupta, R. Cell-free DNA for genomic profiling and minimal residual disease monitoring in Myeloma- are we there yet? Am. J. Blood Res. 2020, 10, 26–45. [Google Scholar] [PubMed]
- Hosseinalizadeh, H.; Mahmoodpour, M.; Ebrahimi, A. The Role of Cell-Free Circulating DNA in the Diagnosis and Prognosis of Breast Cancer. Ann. Cancer Res. Ther. 2021, 29, 169–177. [Google Scholar] [CrossRef]
- Carrasco, R.; Ingelmo-Torres, M.; Gómez, A.; Trullas, R.; Roldán, F.; Ajami, T.; Mengual, L. Cell-Free DNA as a Prognostic Biomarker for Monitoring Muscle-Invasive Bladder Cancer. Int. J. Mol. Sci. 2022, 23. [Google Scholar] [CrossRef]
- Ashley, C.W.; Selenica, P.; Patel, J.; Wu, M.; Nincevic, J.; Lakhman, Y.; Zhou, Q.; Shah, R.H.; Berger, M.F.; Paula, A.D.C.; et al. High-Sensitivity Mutation Analysis of Cell-Free DNA for Disease Monitoring in Endometrial Cancer. Clin. Cancer Res. 2022, 29, 410–421. [Google Scholar] [CrossRef]
- Gianni, C.; Palleschi, M.; Merloni, F.; Bleve, S.; Casadei, C.; Sirico, M.; Di Menna, G.; Sarti, S.; Cecconetto, L.; Mariotti, M.; et al. Potential Impact of Preoperative Circulating Biomarkers on Individual Escalating/de-Escalating Strategies in Early Breast Cancer. Cancers 2022, 15, 96. [Google Scholar] [CrossRef]
- Zhang, S.V.; Tan, M.; Navarro, F.C.; Northcott, J.M.; Ma, S.; Nelson, C.; Chen, R.O. Profiling tumor circu-lating cell-free DNA with an enhanced whole-exome to enable sensitive assessment of somatic mutations. J. ImmunoTher. Cancer. 2020, 8. [Google Scholar]
- Zhang, S.V.; Tan, M.; Northcott, J.M.; Ma, S.; Nelson, C.S.; Bentley, L.; Chen, R.O. Abstract 1989: Enhanced whole exome profiling of tumor circulating cell-free DNA enables sensitive assessment of tumor mutations. Clin Trials. 2020, 80. [Google Scholar] [CrossRef]
- Ignatiadis, M.; Sledge, G.W.; Jeffrey, S.S. Liquid biopsy enters the clinic — implementation issues and future challenges. Nat. Rev. Clin. Oncol. 2021, 18, 297–312. [Google Scholar] [CrossRef]
- Huet, S.; Salles, G. Potential of Circulating Tumor DNA for the Management of Patients With Lymphoma. JCO Oncol Pract. 2020. [Google Scholar] [CrossRef]
- Mesquita, A.; Costa, J.L.; Schmitt, F. Utility of Circulating Tumor DNA in Different Clinical Scenarios of Breast Cancer. Cancers 2020, 12. [Google Scholar] [CrossRef]
- Ju, J.; Sun, K. Plasma cell-free DNA analysis for COVID-19 and beyond. Clin. Transl. Discov. 2022, 2. [Google Scholar] [CrossRef]
- Pataillot-Meakin, T.; Ladame, S.; Bevan, C. Technologies for Size-Based Analysis of Circulating Cell-Free DNA: Limitations and Clinical Implementation. Crit. Rev. Oncog. 2022, 27, 97–108. [Google Scholar] [CrossRef]
- Karaglani, M.; Panagopoulou, M.; Cheimonidi, C.; Tsamardinos, I.; Maltezos, E.; Papanas, N.; Papazoglou, D.; Mastorakos, G.; Chatzaki, E. Liquid Biopsy in Type 2 Diabetes Mellitus Management: Building Specific Biosignatures via Machine Learning. J. Clin. Med. 2022, 11, 1045. [Google Scholar] [CrossRef]
- van der Leest, P.; Ketelaar, E.M.; van Noesel, C.J.M.; Broek, D.v.D.; A A van Boerdonk, R.; Deiman, B.; Rifaela, N.; van der Geize, R.; Huijsmans, C.J.J.; Speel, E.J.M.; et al. Dutch National Round Robin Trial on Plasma-Derived Circulating Cell-Free DNA Extraction Methods Routinely Used in Clinical Pathology for Molecular Tumor Profiling. Clin. Chem. 2022, 68, 963–972. [Google Scholar] [CrossRef]
- Singh, S.; Shrivastava, A.; Singh, G.; Tiwari, K.; Mishra, S.; Pradhan, S.; Agarwal, L. A study for evaluating clinical relevance of circulating cell-free DNA in cervical cancer. J. Cancer Res. Ther. 2022, 18, 1553–1558. [Google Scholar] [CrossRef]
- Poulet, G.; Hulot, J.-S.; Blanchard, A.; Bergerot, D.; Xiao, W.; Ginot, F.; Boutonnet-Rodat, A.; Justine, A.; Beinse, G.; Geromel, V.; et al. Circadian rhythm and circulating cell-free DNA release on healthy subjects. Sci. Rep. 2022. [CrossRef]
- Adachi, J.-I.; Mishima, K.; Nishikawa, R. BIOM-30. ANALYSIS OF GLIOMA-RELATED GENES USING A BREAKTHROUGH AMPLIFICATION TECHNIQUE FOR CELL-FREE DNA IN CEREBROSPINAL FLUID. Neuro-Oncology 2023, 24, vii10–vii11. [Google Scholar] [CrossRef]
- Szadkowska, P.; Roura, A.-J.; Wojtas, B.; Wojnicki, K.; Licholai, S.; Waller, T.; Gubala, T.; Zukowski, K.; Karpeta, M.; Wilkus, K.; et al. Improvements in Quality Control and Library Preparation for Targeted Sequencing Allowed Detection of Potentially Pathogenic Alterations in Circulating Cell-Free DNA Derived from Plasma of Brain Tumor Patients. Cancers 2022, 14, 3902. [Google Scholar] [CrossRef]
- Wang, W.; Gao, T.; Luo, J.; Guo, L.; Li, X.; Li, Y.; Chen, H. Size distribution analysis of residual host cell DNA fragments in lentivirus by CGE-LIF. Electrophoresis 2022, 44, 462–471. [Google Scholar] [CrossRef]
- Cheng, A.P.; Widman, A.J.; Arora, A.; Rusinek, I.; Hooper, W.F.; Murray, R.; Halmos, D.; Langanay, T.; Inghirami, G.; Germer, S.; et al. Abstract 5709: Whole genome error-corrected sequencing for sensitive circulating tumor DNA cancer monitoring. Cancer Res. 2023, 83, 5709–5709. [Google Scholar] [CrossRef]
- Renaud, G.; Nørgaard, M.; Lindberg, J.; Grönberg, H.; De Laere, B.; Jensen, J.B.; Borre, M.; Andersen, C.L.; Sørensen, K.D.; Maretty, L.; et al. Unsupervised detection of fragment length signatures of circulating tumor DNA using non-negative matrix factorization. eLife 2022, 11. [Google Scholar] [CrossRef]
- van der Leest, P.; Janning, M.; Rifaela, N.; Azpurua, M.L.A.; Kropidlowski, J.; Loges, S.; Lozano, N.; Sartori, A.; Irwin, D.; Lamy, P.-J.; et al. Abstract 3411: Detection and monitoring of tumor-derived mutations in ctDNA using the UltraSEEK Lung Panel on the MassARRAY System in metastatic NSCLC patients. Cancer Res. 2022, 82, 3411–3411. [Google Scholar] [CrossRef]
- Udomruk, S.; Phanphaisarn, A.; Kanthawang, T.; Sangphukieo, A.; Sutthitthasakul, S.; Tongjai, S.; Teeyakasem, P.; Thongkumkoon, P.; Orrapin, S.; Moonmuang, S.; et al. Characterization of Cell-Free DNA Size Distribution in Osteosarcoma Patients. Clin. Cancer Res. 2023, 29, 2085–2094. [Google Scholar] [CrossRef] [PubMed]
- Altieri, B.; Appenzeller, S.; Arlt, W.; Asia, M.; Chortis, V.; Elhassan, Y.S.; Fassnacht, M.; Kircher, S.; Landwehr, L.-S.; Lippert, J.; et al. OR04-5 Circulating Cell-Free DNA-Based Biomarkers For Prognostication and Disease Surveillance in Adrenocortical Carcinoma. J. Endocr. Soc. 2022, 6, A81–A82. [Google Scholar] [CrossRef]
- Nidadavolu, L.S.; Feger, D.; Wu, Y.; Grodstein, F.; Gross, A.L.; Bennett, D.A.; Walston, J.D.; Oh, E.S.; Abadir, P.M. Circulating Cell-Free Genomic DNA Is Associated with an Increased Risk of Dementia and with Change in Cognitive and Physical Function. J. Alzheimer's Dis. 2022, 89, 1233–1240. [Google Scholar] [CrossRef]
- Guemri, J.; Pierre-Jean, M.; Brohard, S.; Oussada, N.; Horgues, C.; Bonnet, E.; Mauger, F.; Deleuze, J.-F. Methylated ccfDNA from plasma biomarkers of Alzheimer's disease using targeted bisulfite sequencing. Epigenomics 2022, 14, 451–468. [Google Scholar] [CrossRef]
- Ramprakash, J.; Butler, M.G.; Garlick, R.K.; Konigshofer, Y. Abstract 3376: Novel reference materials for the analysis of methylation in liquid biopsies. Cancer Res. 2022, 82, 3376–3376. [Google Scholar] [CrossRef]
- Cushen, S.C.; Ricci, C.A.; Bradshaw, J.L.; Silzer, T.; Blessing, A.; Sun, J.; Zhou, Z.; Scroggins, S.M.; Santillan, M.K.; Santillan, D.A.; et al. Reduced Maternal Circulating Cell-Free Mitochondrial DNA Is Associated With the Development of Preeclampsia. J. Am. Hear. Assoc. 2022, 11, e021726. [Google Scholar] [CrossRef]
- Kang, J.-K.; Kim, H.-P.; Lim, Y.; Kim, S.Y.; Kim, T.-Y. Abstract 5164: cell-free DNA (cfDNA) fragment size as a potential quantitative biomarker for metastatic colorectal cancer (mCRC). Cancer Res. 2022, 82, 5164–5164. [Google Scholar] [CrossRef]
- Bradshaw, J.L.; Cushen, S.C.; Phillips, N.R.; Goulopoulou, S. Circulating Cell-Free Mitochondrial DNA in Pregnancy. Physiology 2022, 37, 187–196. [Google Scholar] [CrossRef] [PubMed]
- Saucedo-Sariñana, A.M.; Lugo-Escalante, C.R.; Barros-Núñez, P.; Marín-Contreras, M.E.; Pineda-Razo, T.D.; Mariscal-Ramírez, I.; Gallegos-Arreola, M.P.; Rosales-Reynoso, M.A. Circulating cell-free-DNA concentration is a good biomarker for diagnosis of colorectal cancer in Mexican patients. Cell. Mol. Biol. 2022, 68, 1–8. [Google Scholar] [CrossRef]
- Chedid, J.; Allam, S.; Chamseddine, N.; Zerdan, M.B.; El Nakib, C.; I Assi, H. Role of circulating tumor DNA and circulating tumor cells in breast cancer: History and updates. SAGE Open Med. 2022, 10. [Google Scholar] [CrossRef]
- Prakash, V.; Gao, L.; Park, S.J. Evolving Applications of Circulating Tumor DNA in Merkel Cell Carcinoma. Cancers 2023, 15, 609. [Google Scholar] [CrossRef]
- Shields, M.D.; Chen, K.; Dutcher, G.; Patel, I.; Pellini, B. Making the Rounds: Exploring the Role of Circulating Tumor DNA (ctDNA) in Non-Small Cell Lung Cancer. Int. J. Mol. Sci. 2022, 23, 9006. [Google Scholar] [CrossRef]
- Paschold, L.; Binder, M. Circulating Tumor DNA in Gastric and Gastroesophageal Junction Cancer. Curr. Oncol. 2022, 29, 1430–1441. [Google Scholar] [CrossRef]
- Solanky, D.; Ahmed, A.A.; Fierer, J.; Golts, E.; Jones, M.; Mehta, S.R. Utility of Plasma Microbial Cell-Free DNA Decay Kinetics After Aortic Valve Replacement for Bartonella Endocarditis: Case Report. Front. Trop. Dis. 2022, 3. [Google Scholar] [CrossRef]
- Colmenares, R.; Álvarez, N.; Barrio, S.; Martínez-López, J.; Ayala, R. The Minimal Residual Disease Using Liquid Biopsies in Hematological Malignancies. Cancers 2022, 14, 1310. [Google Scholar] [CrossRef]
- Schroers-Martin, J.G.; Alig, S.; Garofalo, A.; Tessoulin, B.; Sugio, T.; Alizadeh, A.A. Molecular Monitoring of Lymphomas. Annu. Rev. Pathol. Mech. Dis. 2023, 18, 149–180. [Google Scholar] [CrossRef] [PubMed]
- Csoma, S.L.; Bedekovics, J.; Veres, G.; Árokszállási, A.; András, C.; Méhes, G.; Mokánszki, A. Circulating Cell-Free DNA-Based Comprehensive Molecular Analysis of Biliary Tract Cancers Using Next-Generation Sequencing. Cancers 2022, 14, 233. [Google Scholar] [CrossRef]
- Jelski, W.; Mroczko, B. Molecular and Circulating Biomarkers of Gastric Cancer. Int. J. Mol. Sci. 2022, 23, 7588. [Google Scholar] [CrossRef] [PubMed]
- Tamm, M.; Kals, M.; Annilo, T.; Oselin, K.; Keerma, K.; Kivistik, P.A.; Nurm, M.; Saare, M.; Jaal, J.; Tõnisson, N. Prognostic Utility of Targeted Circulating Cell-Free DNA versus Formalin-Fixed Paraffin-Embedded DNA Mutation Analysis for Advanced Lung Cancer. Int. J. Oncol. Res. 2022. [CrossRef]
- Hsu, P.-S.; Chen, D.; Chien, H.-P.; Yeh, C.; Hong, P.; Lin, S.-T.; Lee, J.-S.; Lai, H.-C. Detection of molecular residual disease (MRD) for cancer management: Lessons from longitudinal profiling of NSCLC patients undergoing chemotherapy or targeted therapy. J. Clin. Oncol. 2022, 40, e15020–e15020. [Google Scholar] [CrossRef]
- Erve, I.v.; Medina, J.E.; Leal, A.; Papp, E.; Phallen, J.; Adleff, V.; Chiao, E.J.; Arun, A.S.; Bolhuis, K.; Simmons, J.K.; et al. Metastatic Colorectal Cancer Treatment Response Evaluation by Ultra-Deep Sequencing of Cell-Free DNA and Matched White Blood Cells. Clin. Cancer Res. 2022, 29, 899–909. [Google Scholar] [CrossRef]
- Glyn, T.; Purcell, R. Circulating Bacterial DNA: A New Paradigm for Cancer Diagnostics. Front. Med. 2022, 9, 831096. [Google Scholar] [CrossRef] [PubMed]
- Abramson, D.H.; Mandelker, D.L.; Brannon, A.R.; Dunkel, I.J.; Benayed, R.; Berger, M.F.; Arcila, M.E.; Ladanyi, M.; Friedman, D.N.; Jayakumaran, G.; et al. Mutant-RB1 circulating tumor DNA in the blood of unilateral retinoblastoma patients: What happens during enucleation surgery: A pilot study. PLOS ONE 2023, 18, e0271505. [Google Scholar] [CrossRef]
- Cheng, A.P.; Cheng, M.P.; Loy, C.J.; Lenz, J.S.; Chen, K.; Smalling, S.; Burnham, P.; Timblin, K.M.; Orejas, J.L.; Silverman, E.; et al. Cell-free DNA profiling informs all major complications of hematopoietic cell transplantation. Proc. Natl. Acad. Sci. 2022, 119. [Google Scholar] [CrossRef]
- Sivapalan, L.; Murray, J.C.; Canzoniero, J.V.; Landon, B.; Jackson, J.; Scott, S.; Lam, V.; Levy, B.P.; Sausen, M.; Anagnostou, V. Liquid biopsy approaches to capture tumor evolution and clinical outcomes during cancer immunotherapy. J. Immunother. Cancer 2023, 11, e005924. [Google Scholar] [CrossRef]
- Ye, X.; Li, W.; Zhang, L.; Yu, J. Clinical Significance of Circulating Cell-Free DNA Detection in Multiple Myeloma: A Meta-Analysis. Front. Oncol. 2022, 12, 852573. [Google Scholar] [CrossRef]
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