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Published on: January 18, 2017
DDX39B interacts with the pattern recognition receptor pathway to inhibit NF-κB and sensitize to alkylating
Szymon J Szymura1, Giovanna M Bernal1, Longtao Wu1
1Department of Surgery, Section of Neurosurgery, The University of Chicago, Chicago, IL, 60637, USA.
Background:
Nuclear factor-κB (NF-κB) plays a prominent role in promoting inflammation and resistance to DNA damaging therapy. We searched for proteins that modulate the NF-κB response as a prerequisite to identifying novel factors that affect sensitivity to DNA damaging chemotherapy.
Results:
Using streptavidin-agarose pull-down, we identified the DExD/H-box RNA helicase, DDX39B, as a factor that differentially interacts with κB DNA probes. Subsequently, using both RNA interference and CRISPR/Cas9 technology, we demonstrated that DDX39B inhibits NF-κB activity by a general mechanism involving inhibition of p65 phosphorylation. Mechanistically, DDX39B mediates this effect by interacting with the pattern recognition receptor (PRR), LGP2, a pathway that required the cellular response to cytoplasmic double-stranded RNA (dsRNA). From a functional standpoint, loss of DDX39B promoted resistance to alkylating chemotherapy in glioblastoma cells. Further examination of DDX39B demonstrated that its protein abundance was regulated by site-specific sumoylation that promoted its poly-ubiquitination and degradation. These post-translational modifications required the presence of the SUMO E3 ligase, PIASx-β. Finally, genome-wide analysis demonstrated that despite the link to the PRR system, DDX39B did not generally inhibit interferon-stimulated gene expression, but rather acted to attenuate expression of factors associated with the extracellular matrix, cellular migration, and angiogenesis.
Conclusions:
These results identify DDX39B, a factor with known functions in mRNA splicing and nuclear export, as an RNA-binding protein that blocks a subset of the inflammatory response. While these findings identify a pathway by which DDX39B promotes sensitization to DNA damaging therapy, the data also reveal a mechanism by which this helicase may act to mitigate autoimmune disease.
Insights
The RNA helicase DDX39B inhibits inflammation and sensitizes cancer cells to chemotherapy by blocking NF-κB signaling. Loss of DDX39B promotes chemoresistance, suggesting its therapeutic potential in cancer and autoimmune diseases.
Area of Science:
- Molecular Biology
- Immunology
- Oncology
Background:
- Nuclear factor-κB (NF-κB) drives inflammation and chemotherapy resistance.
- Identifying modulators of NF-κB is crucial for novel therapeutic strategies.
Purpose of the Study:
- To identify proteins that modulate the NF-κB response.
- To investigate novel factors impacting sensitivity to DNA damaging chemotherapy.
Main Methods:
- Streptavidin-agarose pull-down assays to identify interacting proteins.
- RNA interference and CRISPR/Cas9 for gene manipulation.
- Analysis of protein post-translational modifications (sumoylation, ubiquitination).
- Genome-wide expression analysis.
Main Results:
- DDX39B, an RNA helicase, was identified as an inhibitor of NF-κB activity via p65 phosphorylation.
- DDX39B interacts with LGP2, requiring a response to cytoplasmic dsRNA.
- Loss of DDX39B confers resistance to chemotherapy in glioblastoma.
- DDX39B abundance is regulated by PIASx-β-mediated sumoylation and ubiquitination.
- DDX39B attenuates expression of genes involved in extracellular matrix, migration, and angiogenesis.
Conclusions:
- DDX39B acts as an RNA-binding protein inhibiting specific inflammatory pathways.
- DDX39B promotes sensitization to DNA damaging therapy.
- DDX39B may play a role in mitigating autoimmune diseases.
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