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Targeting the HuR Oncogenic Role with a New Class of Cytoplasmic Dimerization Inhibitors
Natalia Filippova1, Xiuhua Yang1, Subramaniam Ananthan2
1Division of Neuro-oncology, Department of Neurology, University of Alabama at Birmingham, Birmingham, Alabama.
Abstract:
The development of novel therapeutics that exploit alterations in the activation state of key cellular signaling pathways due to mutations in upstream regulators has generated the field of personalized medicine. These first-generation efforts have focused on actionable mutations identified by deep sequencing of large numbers of tumor samples. We propose that a second-generation opportunity exists by exploiting key downstream "nodes of control" that contribute to oncogenesis and are inappropriately activated due to loss of upstream regulation and microenvironmental influences. The RNA-binding protein HuR represents such a node. Because HuR functionality in cancer cells is dependent on HuR dimerization and its nuclear/cytoplasmic shuttling, we developed a new class of molecules targeting HuR protein dimerization. A structure-activity relationship algorithm enabled development of inhibitors of HuR multimer formation that were soluble, had micromolar activity, and penetrated the blood-brain barrier. These inhibitors were evaluated for activity validation and specificity in a robust cell-based assay of HuR dimerization. SRI-42127, a molecule that met these criteria, inhibited HuR multimer formation across primary patient-derived glioblastoma xenolines (PDGx), leading to arrest of proliferation, induction of apoptosis, and inhibition of colony formation. SRI-42127 had favorable attributes with central nervous system penetration and inhibited tumor growth in mouse models. RNA and protein analysis of SRI-42127-treated PDGx xenolines across glioblastoma molecular subtypes confirmed attenuation of targets upregulated by HuR. These results highlight how focusing on key attributes of HuR that contribute to cancer progression, namely cytoplasmic localization and multimerization, has led to the development of a novel, highly effective inhibitor. SIGNIFICANCE: These findings utilize a cell-based mechanism of action assay with a structure-activity relationship compound development pathway to discover inhibitors that target HuR dimerization, a mechanism required for cancer promotion.
Insights
Researchers developed a novel inhibitor targeting HuR dimerization, a key mechanism in cancer promotion. This new therapeutic effectively reduced glioblastoma growth by inhibiting proliferation and inducing apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Personalized medicine advances focus on mutations in signaling pathways.
- Exploiting downstream "nodes of control" offers a second-generation therapeutic opportunity.
- The RNA-binding protein HuR is a critical node in oncogenesis.
Purpose of the Study:
- To develop novel therapeutics targeting HuR protein dimerization.
- To identify inhibitors of HuR multimer formation with favorable drug-like properties.
Main Methods:
- Utilized a structure-activity relationship algorithm to design HuR dimerization inhibitors.
- Employed a cell-based assay for activity validation and specificity.
- Evaluated inhibitor efficacy in patient-derived glioblastoma xenolines and mouse models.
Main Results:
- Developed soluble, micromolar-activity inhibitors with blood-brain barrier penetration.
- SRI-42127 inhibited HuR multimer formation, proliferation, and induced apoptosis in glioblastoma.
- SRI-42127 demonstrated CNS penetration and inhibited tumor growth in vivo.
- Confirmed attenuation of HuR-upregulated targets across glioblastoma subtypes.
Conclusions:
- Targeting HuR cytoplasmic localization and multimerization yields effective cancer inhibitors.
- SRI-42127 represents a novel therapeutic candidate for glioblastoma.
- Cell-based assays and SAR pathways are effective for discovering mechanism-based inhibitors.
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