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Targeted Brain Tumor Therapy by Inhibiting the MDM2 Oncogene: In Vitro and In Vivo Antitumor Activity and Mechanism
Surendra R Punganuru1, Viswanath Artula1, Wei Zhao2
1Department of Pharmaceutical Sciences, Jerry H. Hodge School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX 79106, USA.
Abstract:
There is a desperate need for novel and efficacious chemotherapeutic strategies for human brain cancers. There are abundant molecular alterations along the p53 and MDM2 pathways in human glioma, which play critical roles in drug resistance. The present study was designed to evaluate the in vitro and in vivo antitumor activity of a novel brain-penetrating small molecule MDM2 degrader, termed SP-141. In a panel of nine human glioblastoma and medulloblastoma cell lines, SP-141, as a single agent, potently killed the brain tumor-derived cell lines with IC50 values ranging from 35.8 to 688.8 nM. Treatment with SP-141 resulted in diminished MDM2 and increased p53 and p21cip1 levels, G2/M cell cycle arrest, and marked apoptosis. In intracranial xenograft models of U87MG glioblastoma (wt p53) and DAOY medulloblastoma (mutant p53) expressing luciferase, treatment with SP-141 caused a significant 4- to 9-fold decrease in tumor growth in the absence of discernible toxicity. Further, combination treatment with a low dose of SP-141 (IC20) and temozolomide, a standard anti-glioma drug, led to synergistic cell killing (1.3- to 31-fold) in glioma cell lines, suggesting a novel means for overcoming temozolomide resistance. Considering that SP-141 can be taken up by the brain without the need for any special delivery, our results suggest that SP-141 should be further explored for the treatment of tumors of the central nervous system, regardless of the p53 status of the tumor.
Insights
A new brain-penetrating drug, SP-141, effectively targets brain tumors by degrading MDM2 and increasing p53. It shows potent antitumor activity in cell lines and xenografts, offering a promising new therapy for central nervous system tumors.
Area of Science:
- Oncology
- Neuro-oncology
- Molecular Biology
Background:
- Human brain cancers urgently require novel chemotherapeutic agents.
- Alterations in the p53 and MDM2 pathways are implicated in glioma drug resistance.
Purpose of the Study:
- To evaluate the antitumor activity of SP-141, a novel brain-penetrating MDM2 degrader, in vitro and in vivo.
- To assess SP-141's efficacy against human glioblastoma and medulloblastoma cell lines and xenograft models.
Main Methods:
- SP-141's activity was tested on nine human glioblastoma and medulloblastoma cell lines.
- In vivo efficacy was evaluated in intracranial xenograft models of U87MG glioblastoma and DAOY medulloblastoma.
- Molecular effects including MDM2/p53 levels, cell cycle, and apoptosis were analyzed.
Main Results:
- SP-141 demonstrated potent cytotoxicity with IC50 values in the nanomolar range against brain tumor cell lines.
- Treatment led to reduced MDM2, increased p53 and p21 levels, cell cycle arrest, and apoptosis.
- SP-141 significantly reduced tumor growth in vivo without observable toxicity and synergized with temozolomide.
Conclusions:
- SP-141 exhibits significant in vitro and in vivo antitumor activity against brain tumors.
- SP-141 represents a promising therapeutic candidate for central nervous system tumors, irrespective of p53 status.
- The drug's brain-penetrating ability and synergistic potential with standard therapies warrant further investigation.
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