PUMC-MB1 is a novel group 3 medulloblastoma preclinical model, sensitive to PI3K/mTOR dual inhibitor
Shizun Wang1, Dan Zhang1, Jialin Wang1
1Department of Pathology, Cell Resource Center, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences (CAMS); School of Basic Medicine, Peking Union Medical College (PUMC), Beijing, China.
Purpose:
Medulloblastoma (MB), a common and heterogeneous posterior fossa tumor in pediatric patients, presents diverse prognostic outcomes. To advance our understanding of MB's intricate biology, the development of novel patient tumor-derived culture MB models with necessary data is still an essential requirement.
Methods:
We continuously passaged PUMC-MB1 in vitro in order to establish a continuous cell line. We examined the in vitro growth using Cell Counting Kit-8 (CCK-8) and in vivo growth with subcutaneous and intracranial xenograft models. The xenografts were investigated histopathologically with Hematoxylin and Eosin (HE) staining and immunohistochemistry (IHC). Concurrently, we explored its molecular features using Whole Genome Sequencing (WGS), targeted sequencing, and RNA sequecing. Guided by bioinformatics analysis, we validated PUMC-MB1's drug sensitivity in vitro and in vivo.
Results:
PUMC-MB1, derived from a high-risk MB patient, displayed a population doubling time (PDT) of 48.18 h and achieved 100% tumor growth in SCID mice within 20 days. HE and Immunohistochemical examination of the original tumor and xenografts confirmed the classification of PUMC-MB1 as a classic MB. Genomic analysis via WGS revealed concurrent MYC and OTX2 amplifications. The RNA-seq data classified it within the Group 3 MB subgroup, while according to the WHO classification, it fell under the Non-WNT/Non-SHH MB. Comparative analysis with D283 and D341med identified 4065 differentially expressed genes, with notable enrichment in the PI3K-AKT pathway. Cisplatin, 4-hydroperoxy cyclophosphamide/cyclophosphamide, vincristine, and dactolisib (a selective PI3K/mTOR dual inhibitor) significantly inhibited PUMC-MB1 proliferation in vitro and in vivo.
Conclusions:
PUMC-MB1, a novel Group 3 (Non-WNT/Non-SHH) MB cell line, is comprehensively characterized for its growth, pathology, and molecular characteristics. Notably, dactolisib demonstrated potent anti-proliferative effects with minimal toxicity, promising a potential therapeutic avenue. PUMC-MB1 could serve as a valuable tool for unraveling MB mechanisms and innovative treatment strategies.
Insights
A new medulloblastoma (MB) cell line, PUMC-MB1, was developed from a high-risk patient. This model, classified as Group 3 MB, shows promise for studying treatment strategies, particularly with the PI3K/mTOR inhibitor dactolisib.
Area of Science:
- Pediatric Oncology
- Cancer Biology
- Genomics
Background:
- Medulloblastoma (MB) is a common pediatric posterior fossa tumor with varied prognoses.
- Developing novel patient tumor-derived models is crucial for understanding MB biology.
Purpose of the Study:
- Establish and characterize a new continuous medulloblastoma cell line (PUMC-MB1) from a patient tumor.
- Investigate its growth, pathological, and molecular features for potential therapeutic applications.
Main Methods:
- Established PUMC-MB1 cell line through continuous in vitro passaging.
- Assessed in vitro and in vivo growth using CCK-8 and xenograft models.
- Performed histopathological (HE, IHC) and molecular analyses (WGS, targeted sequencing, RNA-seq).
Main Results:
- PUMC-MB1, a classic MB, exhibited rapid growth and confirmed Group 3 (Non-WNT/Non-SHH) classification with MYC/OTX2 amplifications.
- Identified significant gene expression differences and PI3K-AKT pathway enrichment compared to other MB lines.
- Demonstrated sensitivity to chemotherapy and dactolisib (PI3K/mTOR inhibitor) in vitro and in vivo.
Conclusions:
- PUMC-MB1 is a well-characterized Group 3 MB cell line suitable for research.
- Dactolisib showed significant anti-proliferative effects with low toxicity, indicating therapeutic potential.
- This model can aid in elucidating MB mechanisms and developing new treatments.
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