Upregulation of multiple signaling pathways by Dock5 deletion in epithelial cells

Xiaohe Xu1, Hisayoshi Yoshizaki1,2, Yasuhito Ishigaki3

  • 1Department of Oncologic Pathology, Kanazawa Medical University, Ishikawa, Japan.

Molecular Vision
|June 7, 2018
PubMed
Abstract

Insights

Loss of Dock5 protein causes lens rupture in mice by activating inflammatory pathways like Erk, Akt, and NFκB. This highlights Dock5

Area of Science:

  • Ophthalmology
  • Genetics
  • Cell Biology

Background:

  • Rupture of Lens Cataract (RLC) is a hereditary mouse model exhibiting spontaneous posterior lens rupture.
  • The causative gene for RLC is identified as dedicator of cytokinesis-5 (Dock5), a guanine nucleotide exchange factor crucial for Rac1 GTPase regulation.

Purpose of the Study:

  • To elucidate the molecular pathways initiated by Dock5 deficiency leading to lens rupture.
  • To investigate the role of Dock5 in maintaining lens epithelial cell (LEC) integrity and function.

Main Methods:

  • RNA expression profiling using microarrays in LECs from wild-type and RLC mice at pre-rupture stage.
  • Ingenuity Pathway Analysis (IPA) to predict altered pathways upon Dock5 loss.
  • Western blotting to validate predicted pathway activation (Erk, Akt, NFκB) in cultured LECs with Dock5 inhibition.

Main Results:

  • IPA identified "Antimicrobial Response, Inflammatory Response, Dermatological Diseases and Conditions" as a highly affected network.
  • Extracellular signal-regulated kinase (Erk) phosphorylation was significantly increased in LECs of Dock5-knockout and RLC mice.
  • Dock5 inhibition in vitro induced activation of Erk, Akt, and nuclear factor-kappa B (NFκB) pathways.

Conclusions:

  • Dock5 plays a critical role in the maintenance of epithelial cells, including lens epithelial cells.
  • Dock5 regulates gene expression critical for cellular homeostasis and preventing pathological phenotypes like lens rupture.
  • Dysregulation of Dock5-mediated pathways contributes to ocular pathologies involving inflammation and cell damage.

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