Oncogenic Protein Kinase D3 Regulating Networks in Invasive Breast Cancer

Yan Liu1,2, Jian Li1, Jun Zhang1,2

  • 1The Key Laboratory of Developmental Genes and Human Disease, Ministry of Education, Institute of Life Science, Southeast University, Nanjing 210096, PR China.

Insights

Protein Kinase D3 (PRKD3) drives invasive breast cancer. This study mapped its regulatory network through phosphoproteome, interactome, and transcriptome analyses, revealing key pathways and hub proteins like UBC involved in cell cycle and migration.

Area of Science:

  • Oncology
  • Molecular Biology
  • Proteomics

Background:

  • Protein Kinase D3 (PRKD3) is a significant oncogenic driver in invasive breast cancer, a leading cause of cancer mortality in women.
  • The regulatory network of PRKD3 remains largely uncharacterized, hindering a full understanding of its role in breast cancer progression.

Purpose of the Study:

  • To systematically explore the PRKD3-regulating network by investigating its phosphoproteome, interactome, and transcriptome.
  • To uncover the molecular mechanisms underlying PRKD3's function in invasive breast cancer.

Main Methods:

  • Utilized iTRAQ for phosphoproteome analysis to identify PRKD3-regulated phosphoproteins.
  • Performed transcriptome analysis using Affymetrix microarray to identify PRKD3-regulated genes upon gene silencing.
  • Employed Co-immunoprecipitation (Co-IP) followed by Mass Spectrometry (MS) to identify PRKD3 interacting proteins.

Main Results:

  • Identified 270 PRKD3-regulated phosphoproteins and 45 PRKD3-regulated genes (20 upregulated, 25 downregulated).
  • Discovered 606 proteins that interact with PRKD3.
  • Network analysis revealed 19 hub nodes, including ELAVL1, UBC, and BRCA1, with UBC being the most prominent. PRKD3 was found to regulate pathways critical for cell cycle and migration.

Conclusions:

  • The study provides a comprehensive map of the PRKD3 regulatory network in invasive breast cancer.
  • Identified key molecular players and pathways (cell cycle, migration) regulated by PRKD3, elucidating its oncogenic mechanisms.
  • This network information offers valuable insights for understanding and potentially targeting PRKD3 in breast cancer treatment.

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