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Discovery, evaluation and mechanism study of WDR5-targeted small molecular inhibitors for neuroblastoma
Qi-Lei Han1, Xiang-Lei Zhang2, Peng-Xuan Ren2,3
1Department of Pediatric Surgery, Children's Hospital of Fudan University, Shanghai, 201102, China.
Abstract:
Neuroblastoma is the most common and deadliest tumor in infancy. WDR5 (WD Repeat Domain 5), a critical factor supporting an N-myc transcriptional complex via its WBM site and interacting with chromosome via its WIN site, promotes the progression of neuroblastoma, thus making it a potential anti-neuroblastoma drug target. So far, a few WIN site inhibitors have been reported, and the WBM site disruptors are rare to see. In this study we conducted virtual screening to identify candidate hit compounds targeting the WBM site of WDR5. As a result, 60 compounds were selected as candidate WBM site inhibitors. Cell proliferation assay demonstrated 6 structurally distinct WBM site inhibitors, numbering as compounds 4, 7, 11, 13, 19 and 22, which potently suppressed 3 neuroblastoma cell lines (MYCN-amplified IMR32 and LAN5 cell lines, and MYCN-unamplified SK-N-AS cell line). Among them, compound 19 suppressed the proliferation of IMR32 and LAN5 cells with EC50 values of 12.34 and 14.89 μM, respectively, and exerted a moderate inhibition on SK-N-AS cells, without affecting HEK293T cells at 20 μM. Analysis of high-resolution crystal complex structure of compound 19 against WDR5 revealed that it competitively occupied the hydrophobic pocket where V264 was located, which might disrupt the interaction of MYC with WDR5 and further MYC-medicated gene transcription. By performing RNA-seq analysis we demonstrated the differences in molecular action mechanisms of the compound 19 and a WIN site inhibitor OICR-9429. Most interestingly, we established the particularly high synergy rate by combining WBM site inhibitor 19 and the WIN site inhibitor OICR-9429, providing a novel therapeutic avenue for neuroblastoma.
Insights
Researchers identified novel WBM site inhibitors for neuroblastoma, a deadly infant cancer. Compound 19 effectively suppressed neuroblastoma cells and, when combined with a WIN site inhibitor, showed significant synergistic effects, offering a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Neuroblastoma is the most common and deadliest childhood cancer.
- WD Repeat Domain 5 (WDR5) is crucial for neuroblastoma progression and is a potential drug target.
- Targeting the WBM site of WDR5 presents a rare but promising therapeutic approach.
Purpose of the Study:
- To identify novel WBM site inhibitors of WDR5 through virtual screening.
- To evaluate the efficacy of identified inhibitors against neuroblastoma cell lines.
- To explore combination therapy with WBM and WIN site inhibitors.
Main Methods:
- Virtual screening of compounds targeting the WDR5 WBM site.
- Cell proliferation assays on neuroblastoma cell lines (IMR32, LAN5, SK-N-AS).
- High-resolution crystal complex structure analysis and RNA-seq to elucidate mechanisms.
Main Results:
- 60 candidate WBM site inhibitors were identified; 6 showed distinct structures and potent suppression of neuroblastoma cells.
- Compound 19 demonstrated significant efficacy against MYCN-amplified cell lines (EC50: 12.34 μM for IMR32, 14.89 μM for LAN5) and moderate inhibition of SK-N-AS cells.
- Compound 19 binds to the WDR5 WBM site, potentially disrupting MYC interaction; RNA-seq revealed distinct mechanisms compared to WIN site inhibitors.
- High synergy was observed when combining WBM inhibitor 19 with WIN site inhibitor OICR-9429.
Conclusions:
- Novel WBM site inhibitors for WDR5 have been identified, with compound 19 showing significant anti-neuroblastoma activity.
- The combination of WBM and WIN site inhibitors offers a highly synergistic and novel therapeutic strategy for neuroblastoma treatment.

