Per2-Mediated Vascular Dysfunction Is Caused by the Upregulation of the Connective Tissue Growth Factor (CTGF)

Vaishnavi Jadhav1, Qianyi Luo1, James M Dominguez1

  • 1Department of Ophthalmology, Eugene and Marilyn Glick Eye Institute, Indiana University School of Medicine, Indianapolis, Indiana, United States of America.

Plos One
|September 24, 2016
PubMed

Insights

Loss of Period 2 (Per2) disrupts circadian rhythm, leading to increased connective tissue growth factor (CTGF) via Wnt/β-catenin pathway activation. This finding offers new insights into microvascular dysfunction and diabetic retinopathy (DR).

Area of Science:

  • Ophthalmology
  • Molecular Biology
  • Chronobiology

Background:

  • Period 2-mutant mice (Per2m/m) exhibit circadian dysfunction and a retinal vascular phenotype resembling diabetic retinopathy (DR).
  • Vascular dysfunction in Per2m/m mice is linked to elevated connective tissue growth factor (CTGF/CCN2).
  • CTGF gene expression is regulated by the Wnt/β-catenin pathway, involving β-catenin binding to TCF/LEF transcription factors.

Purpose of the Study:

  • To investigate the hypothesis that Per2 silencing promotes nuclear translocation and activation of the CTGF gene.
  • To elucidate the molecular mechanisms underlying microvascular dysfunction in Per2-deficient models.

Main Methods:

  • Immunofluorescence staining for CTGF in retinal sections of wild-type (WT) and Per2m/m mice.
  • siRNA-mediated silencing of Per2 in human retinal endothelial cells (HRECs) to assess CTGF and β-catenin expression.
  • TCF/LEF luciferase reporter (TOPflash) assay to confirm β-catenin involvement in CTGF activation.

Main Results:

  • Per2m/m retinas showed increased CTGF immunostaining in the ganglion cell layer and retinal endothelium.
  • Per2 silencing in HRECs led to upregulation of both CTGF and β-catenin.
  • The TOPflash assay demonstrated increased luminescence in HRECs with Per2 siRNA, indicating enhanced Wnt/β-catenin activity.

Conclusions:

  • Loss of Per2 function activates CTGF expression through the nuclear translocation and activity of β-catenin.
  • This study reveals a novel molecular link between circadian rhythm disruption and microvascular pathology, relevant to DR pathogenesis.

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