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Detection and Monitoring of Tumor Associated Circulating DNA in Patient Biofluids
Published on: June 8, 2019
Cerebrospinal fluid circulating tumor DNA depicts profiling of brain metastasis in NSCLC
Jun Wu1,2, Zhiqiang Liu3, Tianxiang Huang4,5
1Department of Neurosurgery, Xiangya Hospital, Central South University, Changsha, China.
Abstract:
Brain metastasis (BM) genetically diverges from the primary tumor in non-small-cell lung cancer (NSCLC). Hence, accurately capturing clinically relevant alterations is pivotal for the delivery of targeted therapies. Circulating tumor DNA (ctDNA) sequencing has emerged as a promising liquid biopsy in the biomarker-based clinical management of recurrent and extracranial metastatic NSCLC. However, the absence of simultaneous sequencing data from brain metastatic sites prevents the definitive evaluation of the efficacy of ctDNA in representing genetic profiles in BM. Here, we performed parallel genomic comparisons between matched BM and primary tumor DNA, plasma ctDNA, and cerebrospinal fluid (CSF) ctDNA. The results indicated that CSF ctDNA had a greater ability than plasma ctDNA to comprehensively represent the mutational landscape of BM, with CSF ctDNA detecting all BM mutations in 83.33% of patients, while plasma ctDNA was only 27.78%. Mutant allele frequency (MAF) in CSF ctDNA was highly correlated with the tumor size of BM (r = 0.95), and the mean MAF in CSF ctDNA was higher than that in plasma ctDNA (38.05% vs. 4.57%, respectively). MAF and tumor mutational burden in CSF ctDNA were strongly associated with those in BM (r = 0.96 and 0.97, respectively). Of note, CSF ctDNA had significantly higher concordance with BM than plasma ctDNA (99.33% vs. 67.44%), facilitating the identification of clinically relevant mutations. Moreover, we found that plasma ctDNA has stronger profiling performance, with a concordance of 93.01% in multiple brain metastases, equivalent to CSF ctDNA. Collectively, our study indicates that CSF ctDNA is superior to plasma ctDNA in accurately representing the profiling of single BM. Plasma ctDNA could be an alternative liquid biopsy material to be applied in multiple brain metastatic NSCLC.
Insights
Cerebrospinal fluid (CSF) circulating tumor DNA (ctDNA) offers superior profiling of single brain metastases in non-small-cell lung cancer (NSCLC) compared to plasma ctDNA. Plasma ctDNA is a viable alternative for multiple brain metastases.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Brain metastasis (BM) in non-small-cell lung cancer (NSCLC) exhibits genetic divergence from primary tumors.
- Accurate genetic profiling of BM is crucial for effective targeted therapy delivery.
- Circulating tumor DNA (ctDNA) is a promising liquid biopsy for NSCLC management, but its utility for BM requires further evaluation.
Purpose of the Study:
- To compare the efficacy of cerebrospinal fluid (CSF) ctDNA and plasma ctDNA in representing the genetic landscape of BM in NSCLC.
- To assess the correlation between ctDNA metrics and BM characteristics.
- To determine the optimal liquid biopsy strategy for NSCLC with brain metastases.
Main Methods:
- Parallel genomic comparison of matched BM, primary tumor DNA, plasma ctDNA, and CSF ctDNA.
- Analysis of mutation detection rates, mutant allele frequency (MAF), and concordance with BM.
- Evaluation of ctDNA performance in single versus multiple BM scenarios.
Main Results:
- CSF ctDNA detected all BM mutations in 83.33% of patients, significantly outperforming plasma ctDNA (27.78%).
- CSF ctDNA showed high correlation with BM size (r=0.95) and higher MAF (38.05% vs. 4.57%).
- CSF ctDNA demonstrated superior concordance with BM (99.33%) compared to plasma ctDNA (67.44%), while plasma ctDNA showed high concordance (93.01%) in multiple BM.
Conclusions:
- CSF ctDNA is superior to plasma ctDNA for accurately profiling single brain metastases in NSCLC.
- Plasma ctDNA serves as a valuable alternative liquid biopsy for patients with multiple brain metastases.
- These findings refine liquid biopsy selection for NSCLC patients with brain metastases.
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