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Functional Precision Medicine Identifies New Therapeutic Candidates for Medulloblastoma
Jessica M Rusert1, Edwin F Juarez2,3, Sebastian Brabetz4,5
1Tumor Initiation and Maintenance Program, NCI-Designated Cancer Center, Sanford Burnham Prebys Medical Discovery Institute, La Jolla, California.
Abstract:
Medulloblastoma is among the most common malignant brain tumors in children. Recent studies have identified at least four subgroups of the disease that differ in terms of molecular characteristics and patient outcomes. Despite this heterogeneity, most patients with medulloblastoma receive similar therapies, including surgery, radiation, and intensive chemotherapy. Although these treatments prolong survival, many patients still die from the disease and survivors suffer severe long-term side effects from therapy. We hypothesize that each patient with medulloblastoma is sensitive to different therapies and that tailoring therapy based on the molecular and cellular characteristics of patients' tumors will improve outcomes. To test this, we assembled a panel of orthotopic patient-derived xenografts (PDX) and subjected them to DNA sequencing, gene expression profiling, and high-throughput drug screening. Analysis of DNA sequencing revealed that most medulloblastomas do not have actionable mutations that point to effective therapies. In contrast, gene expression and drug response data provided valuable information about potential therapies for every tumor. For example, drug screening demonstrated that actinomycin D, which is used for treatment of sarcoma but rarely for medulloblastoma, was active against PDXs representing Group 3 medulloblastoma, the most aggressive form of the disease. Functional analysis of tumor cells was successfully used in a clinical setting to identify more treatment options than sequencing alone. These studies suggest that it should be possible to move away from a one-size-fits-all approach and begin to treat each patient with therapies that are effective against their specific tumor. SIGNIFICANCE: These findings show that high-throughput drug screening identifies therapies for medulloblastoma that cannot be predicted by genomic or transcriptomic analysis.
Insights
Tailoring medulloblastoma treatment using drug screening shows promise. This approach identifies effective therapies based on individual tumor characteristics, moving beyond a one-size-fits-all strategy for better patient outcomes.
Area of Science:
- Pediatric oncology
- Neuro-oncology
- Genomics and personalized medicine
Background:
- Medulloblastoma is a common pediatric brain tumor with distinct molecular subgroups.
- Current treatments (surgery, radiation, chemotherapy) have limitations and cause severe side effects.
- Tumor heterogeneity suggests a need for personalized therapeutic strategies.
Purpose of the Study:
- To investigate if high-throughput drug screening can identify tailored therapies for medulloblastoma subgroups.
- To compare the efficacy of drug screening versus genomic analysis in predicting treatment response.
- To move towards personalized treatment approaches for medulloblastoma patients.
Main Methods:
- Developed a panel of orthotopic patient-derived xenografts (PDX) for medulloblastoma.
- Conducted DNA sequencing, gene expression profiling, and high-throughput drug screening on PDX models.
- Analyzed drug response data to identify potential therapeutic agents for specific tumor subgroups.
Main Results:
- Genomic analysis revealed limited actionable mutations for targeted therapies in most medulloblastomas.
- Gene expression and drug screening data identified effective therapies for all tested tumors.
- Actinomycin D showed efficacy against Group 3 medulloblastoma PDXs, a subgroup with poor prognosis.
- Functional drug screening identified more treatment options than sequencing alone.
Conclusions:
- High-throughput drug screening is a valuable tool for identifying effective medulloblastoma therapies.
- Personalized therapy selection based on drug screening can overcome limitations of genomic analysis.
- This approach offers a promising alternative to the current one-size-fits-all treatment paradigm for medulloblastoma.
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