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Should checkpoint inhibitors be reserved for biomarker-selected pediatric brain tumors?
Yaxel Levin-Carrion1,2, Jayant Bhasin3, Kevin Titkov3
1Rutgers New Jersey Medical School, Newark, NJ, USA. YL1177@njms.rutgers.edu.
Insights
Immune checkpoint inhibitors (ICIs) show limited effectiveness in most pediatric brain tumors. However, they offer durable benefits for rare, hypermutant tumors and specific immune-infiltrated types, suggesting biomarker-driven approaches are key.
Area of Science:
- Pediatric oncology
- Neuro-oncology
- Immunotherapy
Background:
- Pediatric brain tumors like gliomas, medulloblastomas, and ependymomas are leading causes of childhood mortality.
- These tumors are often immunologically "cold," characterized by low tumor mutational burden and few tumor-infiltrating lymphocytes, potentially limiting the efficacy of immune checkpoint inhibitors (ICIs).
- Understanding the tumor immune microenvironment is crucial for developing effective treatments.
Purpose of the Study:
- To systematically review the efficacy and toxicity of PD-1/PD-L1 or CTLA-4 inhibitors in pediatric patients (≤21 years) with primary central nervous system (CNS) tumors.
- To identify patient subgroups and tumor types that may benefit from immunotherapy.
- To inform future clinical trial designs for pediatric CNS tumors.
Main Methods:
- A PRISMA-guided systematic review of PubMed/MEDLINE, Embase, and Scopus was conducted.
- Studies included prospective trials, retrospective series, and observational/case reports of pediatric patients treated with PD-1/PD-L1 or CTLA-4 inhibitors.
- 40 studies met inclusion criteria for qualitative synthesis out of 479 identified records.
Main Results:
- In biomarker-unselected pediatric CNS tumors, ICIs demonstrated low objective response rates (≤6%), short progression-free survival (1-3 months), and acceptable safety (15-25% grade ≥3 adverse events).
- Germline MMR-deficient and hypermutant cohorts showed meaningful and durable responses, including complete remissions and ~50% 2-year overall survival with PD-1 blockade, often with delayed responses.
- Tumor histology revealed varied immune contexts, with gliomas showing "hot," "altered," and "cold" subtypes; medulloblastoma exhibiting PD-L1-low and B7-H3/myeloid programs; and checkpoint expression in germ cell and sellar tumors.
Conclusions:
- Immune checkpoint inhibitors (ICIs) have manageable safety but limited efficacy in unselected pediatric CNS tumors.
- Durable benefits are most apparent in rare, hypermutant tumors (RRD/hypermutant biology) and potentially PD-L1-high niches like some low-grade gliomas and CNS-GCTs.
- Future trials should be biomarker-driven, combining ICIs with priming agents (radiation, epigenetic modulators, chemotherapy) to enhance responses in "cold" tumors.
Purpose:
Pediatric brain tumors, including high-grade gliomas (HHG), medulloblastomas (MB), and ependymomas (EPN), are a leading cause of death in children. They are often immunologically "cold" with low tumor mutational burden (TMB) and very few tumor-infiltrating lymphocytes (TILs), which may limit the role of immune checkpoint inhibitors (ICI).
Methods:
We performed a PRISMA‑guided systematic review of PubMed/MEDLINE, Embase, and Scopus from inception to September 17, 2025, for English-language studies of patients ≤ 21 years with primary CNS tumors treated with PD‑1/PD‑L1 or CTLA‑4 inhibitors. Eligible reports included prospective trials, retrospective series, and observational/case reports with extractable data on efficacy and/or toxicity. Of 479 records identified, 386 unique citations were screened, 127 underwent full‑text review, and 40 met inclusion criteria for qualitative synthesis.
Results:
Prospective and institutional studies in biomarker-unselected diffuse midline glioma, high-grade glioma, medulloblastoma, and ependymoma showed low objective response rates (generally ≤ 6%), short median progression-free survival (1-3 months), and overall survival similar to historical controls, despite acceptable safety (grade ≥ 3 treatment-related adverse events ~ 15-25% with anti-PD-1 ± anti-CTLA-4). In contrast, across germline MMR-deficient and broader RRD/hypermutant cohorts, PD-1 blockade produced clinically meaningful and sometimes durable responses, including complete remissions in malignant glioma and approximate 2-year overall survival near 50%, often with delayed responses and pseudoprogression. Histology-specific profiling highlighted marked variation in immune contexture: pediatric gliomas segregate into immune "hot," "altered," and "cold" subtypes; medulloblastoma is largely PD-L1-low with prominent B7-H3 and myeloid programs; checkpoint expression is also observed in germ cell and selected sellar tumors. Evidence quality is limited by small, heterogeneous, predominantly non-comparative designs.
Conclusion:
ICIs show manageable safety but limited efficacy in unselected pediatric CNS tumors. Durable benefit is most evident in RRD/hypermutant biology and possibly PD-L1-high niches (e.g., some low-grade gliomas and CNS-GCT). Future trials should be biomarker-driven and pair ICIs with priming combinations (e.g., radiation, epigenetic modulators, metronomic chemotherapy) to convert "cold" tumors into responders.
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