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

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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