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Published on: February 13, 2012
A kinome-wide RNAi screen identifies ALK as a target to sensitize neuroblastoma cells for HDAC8-inhibitor treatment
Jing Shen1, Sara Najafi1,2, Sina Stäble1
1Clinical Cooperation Unit Pediatric Oncology, German Cancer Research Center (DKFZ) and German Cancer Consortium (DKTK), Heidelberg, Germany.
Abstract:
The prognosis of advanced stage neuroblastoma patients remains poor and, despite intensive therapy, the 5-year survival rate remains less than 50%. We previously identified histone deacetylase (HDAC) 8 as an indicator of poor clinical outcome and a selective drug target for differentiation therapy in vitro and in vivo. Here, we performed kinome-wide RNAi screening to identify genes that are synthetically lethal with HDAC8 inhibitors. These experiments identified the neuroblastoma predisposition gene ALK as a candidate gene. Accordingly, the combination of the ALK/MET inhibitor crizotinib and selective HDAC8 inhibitors (3-6 µM PCI-34051 or 10 µM 20a) efficiently killed neuroblastoma cell lines carrying wildtype ALK (SK-N-BE(2)-C, IMR5/75), amplified ALK (NB-1), and those carrying the activating ALK F1174L mutation (Kelly), and, in cells carrying the activating R1275Q mutation (LAN-5), combination treatment decreased viable cell count. The effective dose of crizotinib in neuroblastoma cell lines ranged from 0.05 µM (ALK-amplified) to 0.8 µM (wildtype ALK). The combinatorial inhibition of ALK and HDAC8 also decreased tumor growth in an in vivo zebrafish xenograft model. Bioinformatic analyses revealed that the mRNA expression level of HDAC8 was significantly correlated with that of ALK in two independent patient cohorts, the Academic Medical Center cohort (n = 88) and the German Neuroblastoma Trial cohort (n = 649), and co-expression of both target genes identified patients with very poor outcome. Mechanistically, HDAC8 and ALK converge at the level of receptor tyrosine kinase (RTK) signaling and their downstream survival pathways, such as ERK signaling. Combination treatment of HDAC8 inhibitor with crizotinib efficiently blocked the activation of growth receptor survival signaling and shifted the cell cycle arrest and differentiation phenotype toward effective cell death of neuroblastoma cell lines, including sensitization of resistant models, but not of normal cells. These findings reveal combined targeting of ALK and HDAC8 as a novel strategy for the treatment of neuroblastoma.
Insights
Combining ALK and HDAC8 inhibition shows promise for neuroblastoma treatment. This novel strategy targets key survival pathways, effectively reducing tumor growth and improving outcomes in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Advanced neuroblastoma has a poor prognosis with less than 50% 5-year survival.
- Histone deacetylase (HDAC) 8 is a validated poor prognostic indicator and drug target.
- Neuroblastoma predisposition gene ALK was identified as synthetically lethal with HDAC8 inhibitors.
Purpose of the Study:
- To identify genes synthetically lethal with HDAC8 inhibitors in neuroblastoma.
- To evaluate the efficacy of combined ALK and HDAC8 inhibition as a therapeutic strategy.
Main Methods:
- Kinome-wide RNAi screening to identify synthetic lethal partners of HDAC8 inhibitors.
- In vitro drug sensitivity assays using neuroblastoma cell lines with varying ALK status.
- In vivo zebrafish xenograft model to assess tumor growth inhibition.
- Bioinformatic analysis of HDAC8 and ALK mRNA expression in patient cohorts.
Main Results:
- Combined inhibition of ALK (crizotinib) and HDAC8 (PCI-34051 or 20a) demonstrated potent killing of neuroblastoma cell lines.
- Combination treatment reduced tumor growth in a zebrafish xenograft model.
- Co-expression of HDAC8 and ALK mRNA correlated with very poor patient outcomes.
- The combination therapy blocked RTK/ERK survival signaling, induced cell cycle arrest, and promoted cell death, including in resistant models.
Conclusions:
- Combined targeting of ALK and HDAC8 represents a novel and effective therapeutic strategy for neuroblastoma.
- This approach shows potential for sensitizing resistant neuroblastoma models and improving patient survival.
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