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A Novel Small-Molecule Inhibitor of MRCK Prevents Radiation-Driven Invasion in Glioblastoma
Joanna L Birch1, Karen Strathdee2, Lesley Gilmour2
1Wolfson Wohl Translational Cancer Research Centre, Institute of Cancer Sciences, University of Glasgow, Glasgow, United Kingdom. Joanna.birch@glasgow.ac.uk.
Abstract:
Glioblastoma (GBM) is an aggressive and incurable primary brain tumor that causes severe neurologic, cognitive, and psychologic symptoms. Symptoms are caused and exacerbated by the infiltrative properties of GBM cells, which enable them to pervade the healthy brain and disrupt normal function. Recent research has indicated that although radiotherapy (RT) remains the most effective component of multimodality therapy for patients with GBM, it can provoke a more infiltrative phenotype in GBM cells that survive treatment. Here, we demonstrate an essential role of the actin-myosin regulatory kinase myotonic dystrophy kinase-related CDC42-binding kinase (MRCK) in mediating the proinvasive effects of radiation. MRCK-mediated invasion occurred via downstream signaling to effector molecules MYPT1 and MLC2. MRCK was activated by clinically relevant doses per fraction of radiation, and this activation was concomitant with an increase in GBM cell motility and invasion. Furthermore, ablation of MRCK activity either by RNAi or by inhibition with the novel small-molecule inhibitor BDP-9066 prevented radiation-driven increases in motility both in vitro and in a clinically relevant orthotopic xenograft model of GBM. Crucially, treatment with BDP-9066 in combination with RT significantly increased survival in this model and markedly reduced infiltration of the contralateral cerebral hemisphere.Significance: An effective new strategy for the treatment of glioblastoma uses a novel, anti-invasive chemotherapeutic to prevent infiltration of the normal brain by glioblastoma cells.Cancer Res; 78(22); 6509-22. ©2018 AACR.
Insights
Radiotherapy can increase glioblastoma (GBM) cell invasion. Targeting the myotonic dystrophy kinase-related CDC42-binding kinase (MRCK) with BDP-9066 prevents this, improving survival and reducing brain infiltration in GBM models.
Area of Science:
- Oncology
- Cancer Biology
- Neuro-oncology
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with poor prognosis.
- Radiotherapy (RT) is a cornerstone of GBM treatment but can enhance tumor cell invasion.
- GBM cell infiltration disrupts normal brain function and contributes to poor outcomes.
Purpose of the Study:
- To investigate the role of myotonic dystrophy kinase-related CDC42-binding kinase (MRCK) in mediating radiation-induced GBM cell invasion.
- To evaluate the efficacy of inhibiting MRCK activity as a therapeutic strategy against GBM infiltration.
Main Methods:
- Utilized RNA interference (RNAi) to ablate MRCK activity.
- Employed the novel small-molecule inhibitor BDP-9066 to target MRCK.
- Assessed GBM cell motility and invasion in vitro.
- Evaluated treatment efficacy in a clinically relevant orthotopic xenograft model of GBM.
Main Results:
- Radiation activated MRCK, leading to increased GBM cell motility and invasion.
- MRCK inhibition via RNAi or BDP-9066 prevented radiation-induced increases in motility.
- BDP-9066 treatment combined with RT significantly improved survival in the GBM xenograft model.
- Combined therapy markedly reduced GBM infiltration into the contralateral hemisphere.
Conclusions:
- MRCK plays a critical role in mediating the proinvasive effects of radiation on GBM cells.
- Inhibiting MRCK with BDP-9066 represents a promising anti-invasive strategy for GBM treatment.
- Combining RT with MRCK inhibition offers a novel therapeutic approach to improve survival and reduce brain infiltration in GBM patients.
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