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Methods to Classify Cytoplasmic Foci as Mammalian Stress Granules
Published on: May 12, 2017
Cancer-associated DDX3X mutations drive stress granule assembly and impair global translation
Yasmine A Valentin-Vega1, Yong-Dong Wang2, Matthew Parker2
1Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, TN 38105, USA.
Abstract:
DDX3X is a DEAD-box RNA helicase that has been implicated in multiple aspects of RNA metabolism including translation initiation and the assembly of stress granules (SGs). Recent genomic studies have reported recurrent DDX3X mutations in numerous tumors including medulloblastoma (MB), but the physiological impact of these mutations is poorly understood. Here we show that a consistent feature of MB-associated mutations is SG hyper-assembly and concomitant translation impairment. We used CLIP-seq to obtain a comprehensive assessment of DDX3X binding targets and ribosome profiling for high-resolution assessment of global translation. Surprisingly, mutant DDX3X expression caused broad inhibition of translation that impacted DDX3X targeted and non-targeted mRNAs alike. Assessment of translation efficiency with single-cell resolution revealed that SG hyper-assembly correlated precisely with impaired global translation. SG hyper-assembly and translation impairment driven by mutant DDX3X were rescued by a genetic approach that limited SG assembly and by deletion of the N-terminal low complexity domain within DDX3X. Thus, in addition to a primary defect at the level of translation initiation caused by DDX3X mutation, SG assembly itself contributes to global translation inhibition. This work provides mechanistic insights into the consequences of cancer-related DDX3X mutations, suggesting that globally reduced translation may provide a context-dependent survival advantage that must be considered as a possible contributor to tumorigenesis.
Insights
Mutations in DDX3X (a protein involved in RNA metabolism) cause stress granule over-assembly and impaired translation in medulloblastoma. This suggests reduced translation may contribute to tumor development.
Area of Science:
- Molecular Biology
- Cancer Genomics
- RNA Metabolism
Background:
- DDX3X, a DEAD-box RNA helicase, regulates translation initiation and stress granule (SG) assembly.
- Recurrent DDX3X mutations are found in tumors like medulloblastoma (MB), but their functional impact remains unclear.
Purpose of the Study:
- Investigate the physiological consequences of DDX3X mutations in medulloblastoma.
- Elucidate the relationship between SG assembly and translation impairment in cancer.
Main Methods:
- CLIP-seq to identify DDX3X binding targets.
- Ribosome profiling for global translation assessment.
- Single-cell resolution analysis of translation efficiency.
Main Results:
- MB-associated DDX3X mutations lead to SG hyper-assembly and global translation inhibition.
- Mutant DDX3X broadly impairs translation of both targeted and non-targeted mRNAs.
- SG hyper-assembly directly correlates with reduced global translation efficiency.
Conclusions:
- DDX3X mutations cause translation initiation defects and SG assembly-driven translation inhibition.
- Reduced global translation may offer a survival advantage, contributing to tumorigenesis.
- Targeting SG assembly or DDX3X function could be potential therapeutic strategies.
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