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Updated: Aug 22, 2025

Detection and Monitoring of Tumor Associated Circulating DNA in Patient Biofluids
Published on: June 8, 2019
Circulating tumor DNA - A potential aid in the management of chordomas
Stephen C Frederico1,2, Corbin Darling1,2, Xiaoran Zhang2
1School of Medicine, University of Pittsburgh, Pittsburgh, PA, United States.
Abstract:
Chordomas are a locally invasive, low-grade, CNS malignancy that are primarily found in the skull base, spine, and sacrum. They are thought to be derived from notochordal remnants and remain a significant clinical challenge due to their local invasiveness, resistance to chemoradiation, and difficulty in achieving a complete resection. Adjuvant therapy such as proton beam therapy is critical in preventing recurrence in patients who are at high risk, however this treatment is associated with increased risk of complication. Currently, intraoperative observation and imaging findings are used to determine recurrence and success of gross total resection. These methods can be unreliable due to limited operative view, bony and soft tissue involvement, and complex post-operative changes on MRI. Earlier detection of incomplete resection or recurrence will allow for earlier ability to intervene and potentially improve patient outcomes. Circulating-tumor DNA (ctDNA) is cell-free DNA that is released by tumor cells as they undergo cellular turn-over. Monitoring ctDNA has been shown to be more sensitive at predicting residual tumor than imaging in numerous solid malignancies. Furthermore, ctDNA could be detected earlier in peripheral blood as opposed to imaging changes, allowing for earlier intervention. In this review, we intend to give a brief overview of the current state of molecular diagnosis for skull base chordomas. We will then discuss current advances in the utilization of ctDNA for the management of CNS pathologies such as glioblastoma (GBM) and brain metastases. We will also discuss the role ctDNA has in the management of non-CNS pathologies such as osteosarcoma and Ewing sarcoma (EWS). Finally, we will discuss potential implications of ctDNA monitoring for chordoma management.
Insights
Chordomas are challenging CNS malignancies. Monitoring circulating tumor DNA (ctDNA) shows promise for earlier detection of residual disease and recurrence, potentially improving patient outcomes.
Area of Science:
- Oncology
- Molecular Diagnostics
- Genetics
Background:
- Chordomas are locally invasive, low-grade CNS malignancies arising from notochordal remnants, posing significant clinical challenges due to invasiveness and treatment resistance.
- Current methods for assessing resection success and detecting recurrence, such as imaging, are often unreliable in chordoma management.
- Early detection of incomplete resection or recurrence is crucial for timely intervention and improved patient outcomes.
Purpose of the Study:
- To review the current molecular diagnostics for skull base chordomas.
- To discuss the application of circulating tumor DNA (ctDNA) in managing CNS and non-CNS pathologies.
- To explore the potential implications of ctDNA monitoring for chordoma management.
Main Methods:
- Review of current literature on molecular diagnostics for chordomas.
- Discussion of ctDNA applications in glioblastoma, brain metastases, osteosarcoma, and Ewing sarcoma.
- Analysis of ctDNA's potential role in chordoma management.
Main Results:
- Circulating tumor DNA (ctDNA) monitoring is a sensitive method for predicting residual tumor in various malignancies, often outperforming imaging.
- ctDNA can be detected earlier in peripheral blood than imaging changes, enabling prompt intervention.
- Existing research provides a foundation for exploring ctDNA's utility in chordoma.
Conclusions:
- Circulating tumor DNA (ctDNA) monitoring presents a promising avenue for enhancing the management of chordomas.
- Earlier detection of residual disease and recurrence through ctDNA could lead to improved patient outcomes.
- Further research into ctDNA's role in chordoma management is warranted.
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