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Updated: Jul 16, 2025

Identification of Transcription Factor Regulators using Medium-Throughput Screening of Arrayed Libraries and a Dual-Luciferase-Based Reporter
Published on: March 27, 2020
Piperacetazine Directly Binds to the PAX3::FOXO1 Fusion Protein and Inhibits Its Transcriptional Activity
Kay Nakazawa1, Taryn Shaw1, Young K Song2
1Department of Oncology, Georgetown University Medical Center, Georgetown University, Washington, District of Columbia.
Abstract:
The tumor-specific chromosomal translocation product, PAX3::FOXO1, is an aberrant fusion protein that plays a key role for oncogenesis in the alveolar subtype of rhabdomyosarcoma (RMS). PAX3::FOXO1 represents a validated molecular target for alveolar RMS and successful inhibition of its oncogenic activity is likely to have significant clinical applications. Even though several PAX3::FOXO1 function-based screening studies have been successfully completed, a directly binding small-molecule inhibitor of PAX3::FOXO1 has not been reported. Therefore, we screened small-molecule libraries to identify compounds that were capable of directly binding to PAX3::FOXO1 protein using surface plasmon resonance technology. Compounds that directly bound to PAX3::FOXO1 were further evaluated in secondary transcriptional activation assays. We discovered that piperacetazine can directly bind to PAX3::FOXO1 protein and inhibit fusion protein-derived transcription in multiple alveolar RMS cell lines. Piperacetazine inhibited anchorage-independent growth of fusion-positive alveolar RMS cells but not embryonal RMS cells. On the basis of our findings, piperacetazine is a molecular scaffold upon which derivatives could be developed as specific inhibitors of PAX3::FOXO1. These novel inhibitors could potentially be evaluated in future clinical trials for recurrent or metastatic alveolar RMS as novel targeted therapy options.
Significance:
RMS is a malignant soft-tissue tumor mainly affecting the pediatric population. A subgroup of RMS with worse prognosis harbors a unique chromosomal translocation creating an oncogenic fusion protein, PAX3::FOXO1. We identified piperacetazine as a direct inhibitor of PAX3::FOXO1, which may provide a scaffold for designing RMS-specific targeted therapy.
Insights
Researchers identified piperacetazine as a direct inhibitor of the PAX3::FOXO1 fusion protein, a key driver in alveolar rhabdomyosarcoma (RMS). This discovery offers a potential scaffold for developing targeted therapies for this pediatric cancer.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Rhabdomyosarcoma (RMS) is a pediatric soft-tissue malignancy with a subset, alveolar RMS, characterized by the PAX3::FOXO1 fusion protein.
- PAX3::FOXO1 is a validated oncogenic driver in alveolar RMS, representing a critical therapeutic target.
- Directly binding small-molecule inhibitors of PAX3::FOXO1 have not been previously reported.
Purpose of the Study:
- To screen for small molecules that directly bind to and inhibit the PAX3::FOXO1 fusion protein.
- To evaluate the therapeutic potential of identified compounds in preclinical models of alveolar RMS.
Main Methods:
- High-throughput screening of small-molecule libraries using surface plasmon resonance (SPR) to identify direct PAX3::FOXO1 binders.
- Secondary transcriptional activation assays to assess the functional inhibition of PAX3::FOXO1.
- Evaluation of lead compounds in cell-based assays assessing anchorage-independent growth.
Main Results:
- Piperacetazine was identified as a compound that directly binds to PAX3::FOXO1.
- Piperacetazine inhibited PAX3::FOXO1-driven transcription in alveolar RMS cell lines.
- Piperacetazine demonstrated efficacy in inhibiting the anchorage-independent growth of fusion-positive alveolar RMS cells.
Conclusions:
- Piperacetazine is a direct inhibitor of the PAX3::FOXO1 fusion protein.
- Piperacetazine serves as a promising molecular scaffold for the development of novel, targeted therapies for alveolar RMS.
- These findings support the potential clinical evaluation of piperacetazine derivatives for recurrent or metastatic alveolar RMS.
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