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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.
Abstract:
Period 2-mutant mice (Per2m/m), which possess a circadian dysfunction, recapitulate the retinal vascular phenotype similar to diabetic retinopathy (DR). The vascular dysfunction in Per2m/m is associated with an increase in connective tissue growth factor (CTGF/CCN2). At the molecular level, CTGF gene expression is dependent on the canonical Wnt/β-catenin pathway. The nuclear binding of β-catenin to a transcription factor, lymphoid enhancer binding protein (Lef)/ T-cell factor (TCF/LEF), leads to downstream activation of CTGF. For this study, we hypothesized that the silencing of Per2 results in nuclear translocation and subsequent transactivation of the CTGF gene. To test this hypothesis, we performed immunofluorescence labeling for CTGF in retinal sections from wild-type (WT) and Per2m/m mice. Human retinal endothelial cells (HRECs) were transfected with siRNA for Per2, and the protein expression of CTGF and β-catenin was evaluated. The TCF/LEF luciferase reporter (TOPflash) assay was performed to validate the involvement of β-catenin in the activation of CTGF. Per2m/m retinas exhibited an increased CTGF immunostaining in ganglion cell layer and retinal endothelium. Silencing of Per2 using siRNA resulted in an upregulation of CTGF and β-catenin. The TOPflash assay revealed an increase in luminescence for HRECs transfected with Per2 siRNA. Our studies show that loss of Per2 results in an activation of CTGF via nuclear entry of β-catenin. Our study provides novel insight into the understanding of microvascular dysfunction in Per2m/m mice.
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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