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Metabolic Labeling of Leucine Rich Repeat Kinases 1 and 2 with Radioactive Phosphate
Published on: September 18, 2013
Maternal Embryonic Leucine Zipper Kinase (MELK), a Potential Therapeutic Target for Neuroblastoma
Alexandre Chlenski1, Chanyoung Park2, Marija Dobratic1
1Department of Pediatrics, University of Chicago, Chicago, Illinois.
Abstract:
Maternal embryonic leucine zipper kinase (MELK) activates pathways that mediate aggressive tumor growth and therapy resistance in many types of adult cancers. Pharmacologic and genomic inhibition of MELK impairs tumor growth and increases sensitivity to radiation and chemotherapy. On the basis of these promising preclinical studies, early-phase adult clinical trials testing the MELK inhibitor OTS167 are ongoing. To investigate whether MELK is also a therapeutic target in neuroblastoma, we analyzed MELK expression in primary tumors and cell lines, and examined the effects of OTS167 on neuroblastoma growth. In primary tumors, high levels of MELK were associated with advanced stage disease and inferior survival. Higher levels of MELK were also detected in tumorigenic versus nontumorigenic neuroblastoma cell lines, and cells with higher levels of MELK expression were more sensitive to OTS167 than low-MELK expressing cells. OTS167 suppressed the growth of neuroblastoma xenografts, and in a preclinical model of minimal residual disease, survival was prolonged with MELK inhibition. OTS167 treatment downregulated MELK and its target enhancer of zeste homolog 2 (EZH2), a component of the polycomb repressive complex 2 (PRC2) that is known to modulate the DNA damage response. We also show that OTS167 reduced the formation of collapsed replication forks induced by camptothecin or radiation. Taken together, our results indicate that MELK indirectly mediates efficient processing of replication-associated DNA lesions in neuroblastoma, and that OTS167 sensitizes cells to DNA-damaging agents by abrogating this process. Further studies evaluating the activity of combination treatment regimens with OTS167 in neuroblastoma are warranted.
Insights
Maternal embryonic leucine zipper kinase (MELK) drives aggressive neuroblastoma. Inhibiting MELK with OTS167 suppressed tumor growth and prolonged survival, showing promise for treating this childhood cancer.
Area of Science:
- Oncology
- Molecular Biology
- Pediatric Cancer Research
Background:
- Maternal embryonic leucine zipper kinase (MELK) promotes aggressive tumor growth and therapy resistance in adult cancers.
- MELK inhibition shows promise in preclinical adult cancer models, with clinical trials ongoing for the MELK inhibitor OTS167.
Purpose of the Study:
- To investigate MELK as a therapeutic target in neuroblastoma.
- To analyze MELK expression in neuroblastoma and evaluate the efficacy of OTS167.
Main Methods:
- Analysis of MELK expression in primary neuroblastoma tumors and cell lines.
- Assessment of OTS167 effects on neuroblastoma cell growth, xenografts, and minimal residual disease models.
- Investigation of MELK's role in DNA damage response pathways.
Main Results:
- High MELK levels in primary tumors correlated with advanced stage and poor survival.
- MELK expression was higher in tumorigenic neuroblastoma cells, which were more sensitive to OTS167.
- OTS167 suppressed neuroblastoma xenograft growth, prolonged survival in minimal residual disease models, and downregulated MELK and EZH2.
- OTS167 reduced replication fork collapse induced by DNA-damaging agents.
Conclusions:
- MELK plays a role in processing DNA replication-associated lesions in neuroblastoma.
- OTS167 sensitizes neuroblastoma cells to DNA-damaging agents by disrupting this process.
- Further research into combination therapies involving OTS167 for neuroblastoma is warranted.
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