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Doxorubicin-Induced TrkAIII Activation: A Selection Mechanism for Resistant Dormant Neuroblastoma Cells
Lucia Cappabianca1, Michela Sebastiano1, Marianna Ruggieri1
1Department of Biotechnological and Applied Clinical Sciences, University of L'Aquila, 67100 L'Aquila, Italy.
Abstract:
Patients with advanced neuroblastoma (NB) receive multimodal clinical therapy, including the potent anthracycline chemotherapy drug doxorubicin (Dox). The acquisition of Dox resistance, however, is a major barrier to a sustained response and leads to a poor prognosis in advanced disease states, reinforcing the need to identify and inhibit Dox resistance mechanisms. In this context, we report on the identification and inhibition of a novel Dox resistance mechanism. This mechanism is characterized by the Dox-induced activation of the oncogenic TrkAIII alternative splice variant, resulting in increased Dox resistance, and is blocked by lestaurtinib, entrectinib, and crizotinib tyrosine kinase and LY294002 IP3-K inhibitors. Using time lapse live cell imaging, conventional and co-immunoprecipitation Western blots, RT-PCR, and inhibitor studies, we report that the Dox-induced TrkAIII activation correlates with proliferation inhibition and is CDK1- and Ca2+-uniporter-independent. It is mediated by ryanodine receptors; involves Ca2+-dependent interactions between TrkAIII, calmodulin and Hsp90; requires oxygen and oxidation; occurs within assembled ERGICs; and does not occur with fully spliced TrkA. The inhibitory effects of lestaurtinib, entrectinib, crizotinib, and LY294002 on the Dox-induced TrkAIII and Akt phosphorylation and resistance confirm roles for TrkAIII and IP3-K consistent with Dox-induced, TrkAIII-mediated pro-survival IP3K/Akt signaling. This mechanism has the potential to select resistant dormant TrkAIII-expressing NB cells, supporting the use of Trk inhibitors during Dox therapy in TrkAIII-expressing NBs.
Insights
Doxorubicin resistance in neuroblastoma involves TrkAIII activation, which can be blocked by specific inhibitors. Targeting this mechanism may improve treatment outcomes for neuroblastoma patients.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Advanced neuroblastoma (NB) treatment relies on chemotherapy, but drug resistance limits efficacy.
- Doxorubicin (Dox) resistance is a significant challenge in NB, necessitating the identification of resistance mechanisms.
Purpose of the Study:
- To identify and characterize a novel mechanism of Dox resistance in neuroblastoma.
- To evaluate the potential of tyrosine kinase and IP3-K inhibitors in overcoming Dox resistance.
Main Methods:
- Live cell imaging, Western blots, RT-PCR, and inhibitor studies were employed.
- Investigated Dox-induced TrkAIII activation and its downstream signaling pathways.
- Assessed the effects of lestaurtinib, entrectinib, crizotinib, and LY294002 on Dox resistance.
Main Results:
- Doxorubicin induces TrkAIII activation, leading to increased drug resistance.
- This resistance mechanism is mediated by calcium-dependent interactions involving TrkAIII, calmodulin, and Hsp90 within ERGICs.
- Inhibitors like lestaurtinib, entrectinib, crizotinib, and LY294002 effectively block Dox-induced TrkAIII activation and promote sensitivity.
Conclusions:
- Dox-induced TrkAIII activation represents a novel pro-survival signaling pathway contributing to Dox resistance in NB.
- Targeting TrkAIII with specific inhibitors may be a viable strategy to enhance Dox efficacy in TrkAIII-expressing neuroblastoma.
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