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Entrectinib is a potent inhibitor of Trk-driven neuroblastomas in a xenograft mouse model
Radhika Iyer1, Lea Wehrmann1, Rebecca L Golden1
1Division of Oncology, The Children's Hospital of Philadelphia, Philadelphia, PA 19104, USA.
Abstract:
Neuroblastoma (NB) is one of the most common and deadly childhood solid tumors. These tumors are characterized by clinical heterogeneity, from spontaneous regression to relentless progression, and the Trk family of neurotrophin receptors plays an important role in this heterogeneous behavior. We wanted to determine if entrectinib (RXDX-101, Ignyta, Inc.), an oral Pan-Trk, Alk and Ros1 inhibitor, was effective in our NB model. In vitro effects of entrectinib, either as a single agent or in combination with the chemotherapeutic agents Irinotecan (Irino) and Temozolomide (TMZ), were studied on an SH-SY5Y cell line stably transfected with TrkB. In vivo growth inhibition activity was studied in NB xenografts, again as a single agent or in combination with Irino-TMZ. Entrectinib significantly inhibited the growth of TrkB-expressing NB cells in vitro, and it significantly enhanced the growth inhibition of Irino-TMZ when used in combination. Single agent therapy resulted in significant tumor growth inhibition in animals treated with entrectinib compared to control animals [p < 0.0001 for event-free survival (EFS)]. Addition of entrectinib to Irino-TMZ also significantly improved the EFS of animals compared to vehicle or Irino-TMZ treated animals [p < 0.0001 for combination vs. control, p = 0.0012 for combination vs. Irino-TMZ]. We show that entrectinib inhibits growth of TrkB expressing NB cells in vitro and in vivo, and that it enhances the efficacy of conventional chemotherapy in in vivo models. Our data suggest that entrectinib is a potent Trk inhibitor and should be tested in clinical trials for NBs and other Trk-expressing tumors.
Insights
Entrectinib effectively inhibits neuroblastoma (NB) cell growth and enhances chemotherapy. This Trk inhibitor shows promise for treating NB and other Trk-expressing tumors in clinical trials.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Neuroblastoma (NB) is a common and lethal pediatric solid tumor with variable clinical behavior.
- The Trk family of neurotrophin receptors influences NB heterogeneity.
- Entrectinib is an oral Pan-Trk, Alk, and Ros1 inhibitor.
Purpose of the Study:
- To evaluate the efficacy of entrectinib in neuroblastoma models.
- To assess entrectinib's effectiveness as a single agent and in combination with chemotherapy.
- To investigate entrectinib's role in TrkB-expressing neuroblastoma.
Main Methods:
- In vitro studies on SH-SY5Y cells (TrkB-transfected) treated with entrectinib, Irinotecan (Irino), and Temozolomide (TMZ).
- In vivo studies using NB xenografts treated with entrectinib alone or combined with Irino-TMZ.
- Analysis of tumor growth inhibition and event-free survival (EFS).
Main Results:
- Entrectinib significantly inhibited TrkB-expressing NB cell growth in vitro.
- Entrectinib enhanced the growth inhibition of Irino-TMZ combination therapy in vitro.
- Single-agent entrectinib significantly inhibited tumor growth in vivo (p < 0.0001 for EFS).
- Combination therapy with entrectinib and Irino-TMZ significantly improved EFS compared to control and Irino-TMZ alone (p < 0.0001 and p = 0.0012, respectively).
Conclusions:
- Entrectinib demonstrates potent inhibition of TrkB-expressing neuroblastoma cells both in vitro and in vivo.
- Entrectinib enhances the efficacy of conventional chemotherapy (Irino-TMZ) in preclinical neuroblastoma models.
- Entrectinib warrants clinical investigation for neuroblastoma and other Trk-expressing malignancies.
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