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DDX5 is a multifunctional co-activator of steroid hormone receptors
Martin Wagner1, Raphaela Rid, Christina J Maier
1Division of Molecular Dermatology, Department of Dermatology, Paracelsus Medical University (PMU), Salzburg, Austria. ma.wagner@salk.at
Abstract:
The vitamin D receptor (VDR), an evolutionarily conserved member of the nuclear receptor superfamily, links the metabolically activated vitamin D ligand, calcitriol, with its vitamin D-responsive target genes that are implicated in diverse physiological processes. By genome-wide protein-protein interaction screening of a keratinocyte cDNA library using VDR as bait, we found that the DEAD box RNA helicase p68, also referred to as DDX5, directly interacts with VDR. Domain analysis reveals that the ligand-binding domain of VDR is responsible for the binding, an interaction typical of NR co-activators. Interestingly, the VDR interacting domain of DDX5 lacks a LXXLL-motif and interaction analysis of helix 12 VDR mutants E420K, E420Q and L417S, known to decrease binding affinity of LxxLL motif-containing co-activators showed no change in their interactions. As further support that this novel interactor might be involved in vitamin D-stimulated transcriptional regulation, we demonstrate that VDR and DDX5 co-localize within the nuclei of HaCaT keratinocytes and sub-cellular protein fractions. In vivo validation studies demonstrate, that overexpression of DDX5 has the capability to enhance both, calcitriol-dependent transcription of known response genes and an extrachromosomal DR3-type reporter response. In agreement with this, shRNA based knock-down of DDX5 in keratinocytes compensates for this particular response. Finally, our findings reveal parallels between the VDR-DDX5 interaction and the well-characterized interaction between DDX5 and human estrogen receptor α and the androgen receptor, thus underscoring the physiological significance of the novel protein-protein interaction.
Insights
The vitamin D receptor (VDR) interacts with DEAD box RNA helicase p68 (DDX5), enhancing vitamin D-regulated gene transcription. This novel interaction, crucial for VDR function, is independent of typical co-activator motifs.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The vitamin D receptor (VDR) is a nuclear receptor that regulates gene expression.
- VDR links calcitriol to target genes involved in various physiological processes.
- Understanding VDR interactions is key to deciphering its regulatory mechanisms.
Purpose of the Study:
- To identify novel protein-protein interactions with VDR.
- To investigate the functional significance of VDR interactions in transcriptional regulation.
- To explore the role of DEAD box RNA helicase p68 (DDX5) in VDR signaling.
Main Methods:
- Genome-wide protein-protein interaction screening using a keratinocyte cDNA library.
- Domain analysis to identify binding regions on VDR and DDX5.
- Co-localization studies in HaCaT keratinocytes.
- In vivo validation using overexpression and shRNA knockdown of DDX5.
Main Results:
- DDX5 directly interacts with the ligand-binding domain of VDR.
- The VDR-DDX5 interaction does not involve canonical LXXLL motifs.
- VDR and DDX5 co-localize in the nucleus.
- DDX5 overexpression enhances VDR-mediated transcription, while DDX5 knockdown reduces it.
Conclusions:
- DDX5 is a novel VDR interacting protein that enhances VDR transcriptional activity.
- The VDR-DDX5 interaction mechanism differs from typical VDR co-activator interactions.
- This interaction highlights a conserved mechanism across nuclear receptors, including estrogen and androgen receptors.
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