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Defining Gene Functions in Tumorigenesis by Ex vivo Ablation of Floxed Alleles in Malignant Peripheral Nerve Sheath Tumor Cells
Published on: August 25, 2021
Isoxazole compound ML327 blocks MYC expression and tumor formation in neuroblastoma
Eric J Rellinger1,2, Chandrasekhar Padmanabhan1, Jingbo Qiao1,2
1Section of Surgical Sciences, Department of Surgery, at Vanderbilt University Medical Center, TN 37232, Nashville, USA.
Abstract:
Neuroblastomas are the most common extracranial solid tumors in children and arise from the embryonic neural crest. MYCN-amplification is a feature of ∼30% of neuroblastoma tumors and portends a poor prognosis. Neural crest precursors undergo epithelial-to-mesenchymal transition (EMT) to gain migratory potential and populate the sympathoadrenal axis. Neuroblastomas are posited to arise due to a blockade of neural crest differentiation. We have recently reported effects of a novel MET inducing compound ML327 (N-(3-(2-hydroxynicotinamido) propyl)-5-phenylisoxazole-3-carboxamide) in colon cancer cells. Herein, we hypothesized that forced epithelial differentiation using ML327 would promote neuroblastoma differentiation. In this study, we demonstrate that ML327 in neuroblastoma cells induces a gene signature consistent with both epithelial and neuronal differentiation features with adaptation of an elongated phenotype. These features accompany induction of cell death and G1 cell cycle arrest with blockage of anchorage-independent growth and neurosphere formation. Furthermore, pretreatment with ML327 results in persistent defects in proliferative potential and tumor-initiating capacity, validating the pro-differentiating effects of our compound. Intriguingly, we have identified destabilization of MYC signaling as an early and consistent feature of ML327 treatment that is observed in both MYCN-amplified and MYCN-single copy neuroblastoma cell lines. Moreover, ML327 blocked MYCN mRNA levels and tumor progression in established MYCN-amplified xenografts. As such, ML327 may have potential efficacy, alone or in conjunction with existing therapeutic strategies against neuroblastoma. Future identification of the specific intracellular target of ML327 may inform future drug discovery efforts and enhance our understanding of MYC regulation.
Insights
A novel compound, ML327, promotes differentiation in neuroblastoma cells, a common childhood cancer. This treatment reduces tumor growth and MYCN signaling, offering potential therapeutic strategies.
Area of Science:
- Pediatric oncology
- Cancer cell biology
- Drug discovery
Background:
- Neuroblastomas are common pediatric extracranial solid tumors originating from neural crest cells.
- MYCN amplification in neuroblastoma indicates a poor prognosis and is found in approximately 30% of cases.
- Neuroblastomas are thought to arise from blocked neural crest differentiation.
Purpose of the Study:
- To investigate the potential of ML327, a MET-inducing compound, to promote differentiation in neuroblastoma cells.
- To assess the impact of ML327 on neuroblastoma cell phenotype, proliferation, and tumor-initiating capacity.
- To explore ML327's effect on MYC signaling in neuroblastoma.
Main Methods:
- Treatment of neuroblastoma cell lines with ML327.
- Analysis of gene expression signatures related to differentiation.
- Assessment of cell death, cell cycle arrest, anchorage-independent growth, and neurosphere formation.
- Evaluation of tumor growth and MYCN mRNA levels in xenograft models.
Main Results:
- ML327 induced epithelial and neuronal differentiation markers, elongated cell phenotype, cell death, and G1 cell cycle arrest.
- ML327 treatment led to persistent defects in proliferative potential and tumor-initiating capacity.
- ML327 destabilized MYC signaling in both MYCN-amplified and single-copy neuroblastoma cells, reducing MYCN mRNA levels and blocking tumor progression in xenografts.
Conclusions:
- ML327 demonstrates pro-differentiating effects in neuroblastoma cells, impacting proliferation and tumor initiation.
- ML327 effectively targets MYC signaling and reduces tumor progression in vivo.
- ML327 holds potential as a therapeutic agent for neuroblastoma, possibly in combination with other treatments.

