AGEs inhibit scavenger receptor class B type I gene expression via Smad1 in HUVECs

Hiromi Nagata1,2, Jingya Lyu1, Hitomi Imachi1

  • 1Department of Endocrinology and Metabolism, Faculty of Medicine, Kagawa University, Miki-cho, Kagawa, Japan.

Insights

Advanced glycation end products (AGEs) reduce hSR-BI/CLA-1 expression in endothelial cells by activating the Smad1 pathway. This downregulation contributes to diabetic vascular dysfunction and may offer a therapeutic target.

Area of Science:

  • Endocrinology
  • Vascular Biology
  • Molecular Medicine

Background:

  • Vascular complications are a major cause of death in diabetes.
  • Advanced glycation end products (AGEs) drive diabetic vascular dysfunction.
  • hSR-BI/CLA-1 mediates HDL cholesterol uptake and endothelial nitric oxide synthase (eNOS) activation in endothelial cells.

Purpose of the Study:

  • To investigate the impact of AGEs on hSR-BI/CLA-1 expression in human umbilical vein endothelial cells (HUVECs).
  • To elucidate the molecular mechanisms by which AGEs affect hSR-BI/CLA-1 expression and subsequent eNOS activity.

Main Methods:

  • Real-time PCR and Western blot to quantify hSR-BI/CLA-1 expression.
  • Reporter gene assays to assess promoter activity.
  • Analysis of eNOS phosphorylation (Ser 1179) to determine activity.
  • Investigation of Smad1 binding to the hSR-BI/CLA-1 promoter.

Main Results:

  • AGEs significantly decreased endogenous hSR-BI/CLA-1 expression in HUVECs.
  • AGEs inhibited hSR-BI/CLA-1 promoter activity and mRNA expression, mediated by the receptor RAGE.
  • Smad1 was identified as a key transcription factor binding to the hSR-BI/CLA-1 promoter, with AGEs stimulating its activity.
  • AGEs pretreatment abolished HDL-induced eNOS phosphorylation, indicating reduced endothelial function.

Conclusions:

  • AGEs downregulate endothelial hSR-BI/CLA-1 expression through the Smad1 signaling pathway.
  • This AGEs-induced downregulation of hSR-BI/CLA-1 impairs eNOS activity.
  • Targeting the AGEs-Smad1-hSR-BI/CLA-1 axis presents a potential therapeutic strategy for diabetic endothelial dysfunction.

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