Cerebrospinal fluid cell-free DNA sequencing in pediatric CNS tumors: towards liquid molecular neuropathology.
This review describes evidence that cerebrospinal fluid cell-free DNA sequencing can complement tissue neuropathology in pediatric CNS tumors through molecular diagnosis, staging, minimal residual disease monitoring, and evaluation of ambiguous radiologic progression.
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This review describes evidence that cerebrospinal fluid cell-free DNA sequencing can complement tissue neuropathology in pediatric CNS tumors through molecular diagnosis, staging, minimal residual disease monitoring, and evaluation of ambiguous radiologic progression.
Research significance
Evidence summarized in the record supports CSF cell-free DNA as a source of tumor mutations, copy-number changes, methylation class, and longitudinal burden; it may therefore improve treatment selection or adaptation when tissue sampling is limited, but clinical benefit from CSF-guided decisions remains an unproven inference requiring prospective validation.
Source abstract
Pediatric central nervous system tumors remain a leading cause of cancer-related mortality in children, while their diagnosis, risk stratification, and therapeutic management increasingly depend on integrated molecular characterization. However, representative tumor tissue is often difficult to obtain because of tumor location, surgical risk, limited biopsy material, and the impracticality of repeated sampling during disease evolution. Cerebrospinal fluid (CSF) has therefore emerged as a particularly informative liquid biopsy compartment for many CNS malignancies, enriched in tumor-derived cell-free DNA and, for tumors in contact with the CSF spaces, more directly reflective of intracranial tumor biology than plasma; its yield nonetheless varies with tumor biology and anatomical proximity to CSF pathways. Here, we review the evidence supporting CSF cell-free DNA sequencing as an emerging extension of molecular neuropathology in pediatric CNS tumors. Targeted next-generation sequencing, low-pass whole-genome sequencing, methylation-based classifiers, and nanopore sequencing now enable complementary assessment of somatic mutations, copy number alterations, epigenetic tumor class, and longitudinal tumor burden from low-input pediatric CSF samples. Recent studies have moved the field beyond analytical proof of concept towards defined clinical scenarios, including molecular diagnosis when biopsy is infeasible, molecular staging of high-CSF-shedding tumors, minimal residual disease monitoring in medulloblastoma and other embryonal tumors, and clarification of ambiguous radiological progression. CSF-based sequencing does not replace tissue neuropathology, but provides a liquid molecular layer that can complement, extend, or in selected situations partially substitute tissue-based diagnosis. Its broader adoption now depends on workflow standardization, assay-specific reporting standards, external quality assurance, and prospective evidence that CSF-guided decisions improve patient outcomes.