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Published on: August 20, 2019
Medulloblastoma-associated mutations in the DEAD-box RNA helicase DDX3X/DED1 cause specific defects in translation
Nicolette P Brown1, Ashley M Vergara1, Alisha B Whelan1
1Department of Molecular and Cellular Biology, University of Arizona, Tucson, Arizona, USA.
Abstract:
Medulloblastoma is the most common pediatric brain cancer, and sequencing studies identified frequent mutations in DDX3X, a DEAD-box RNA helicase primarily implicated in translation. Forty-two different sites were identified, suggesting that the functional effects of the mutations are complex. To investigate how these mutations are affecting DDX3X cellular function, we constructed a full set of equivalent mutant alleles in DED1, the Saccharomyces cerevisiae ortholog of DDX3X, and characterized their effects in vivo and in vitro. Most of the medulloblastoma-associated mutants in DDX3X/DED1 (ded1-mam) showed substantial growth defects, indicating that functional effects are conserved in yeast. Further, while translation was affected in some mutants, translation defects affecting bulk mRNA were neither consistent nor correlated with the growth phenotypes. Likewise, increased formation of stress granules in ded1-mam mutants was common but did not correspond to the severity of the mutants' growth defects. In contrast, defects in translating mRNAs containing secondary structure in their 5' untranslated regions (UTRs) were found in almost all ded1-mam mutants and correlated well with growth phenotypes. We thus conclude that these specific translation defects, rather than generalized effects on translation, are responsible for the observed cellular phenotypes and likely contribute to DDX3X-mutant medulloblastoma. Examination of ATPase activity and RNA binding of recombinant mutant proteins also did not reveal a consistent defect, indicating that the translation defects are derived from multiple enzymatic deficiencies. This work suggests that future studies into medulloblastoma pathology should focus on this specific translation defect, while taking into account the wide spectrum of DDX3X mutations.
Insights
Medulloblastoma mutations in DDX3X disrupt specific translation of mRNAs with 5' UTR secondary structures, causing cellular defects. This finding offers new insights into pediatric brain cancer pathology.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- Medulloblastoma, a common pediatric brain cancer, frequently harbors mutations in DDX3X, a DEAD-box RNA helicase.
- Forty-two mutation sites suggest complex functional impacts of DDX3X alterations.
Purpose of the Study:
- To investigate the cellular and functional consequences of medulloblastoma-associated DDX3X mutations.
- To determine the specific molecular mechanisms underlying DDX3X-mutant phenotypes using a yeast model.
Main Methods:
- Constructed equivalent mutant alleles of Saccharomyces cerevisiae DED1 (DDX3X ortholog).
- Characterized phenotypes of yeast mutants (ded1-mam) in vivo and in vitro.
- Assessed bulk mRNA translation, stress granule formation, and translation of structured 5' UTRs.
- Examined ATPase activity and RNA binding of recombinant mutant proteins.
Main Results:
- Most ded1-mam mutants exhibited significant growth defects, indicating conserved functional effects.
- Generalized translation defects and stress granule formation did not consistently correlate with growth phenotypes.
- Defects in translating 5' UTR structured mRNAs were prevalent in ded1-mam mutants and correlated with growth defects.
- ATPase activity and RNA binding showed no consistent defects, suggesting multiple enzymatic deficiencies.
Conclusions:
- Specific translation defects of structured 5' UTR mRNAs, not general translation issues, drive cellular phenotypes in DDX3X-mutant medulloblastoma.
- These findings highlight a critical mechanism in pediatric brain cancer pathogenesis.
- Future research should focus on this specific translation defect and the spectrum of DDX3X mutations.
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