Cathepsin D inhibits AGEs-induced phenotypic transformation in vascular smooth muscle cells

Xingmin He1, Songhao Tian2, Lixia Bu3

  • 1Fenyang College of Shanxi Medical University, Fenyang, 032200, Shanxi, China.

Scientific Reports
|April 3, 2025
PubMed

Insights

Cathepsin D (CTSD) protects against advanced glycation end-product (AGEs)-induced vascular smooth muscle cell (VSMC) changes in diabetes. Overexpressing CTSD inhibits AGEs-driven VSMC proliferation, migration, and senescence, offering a potential therapeutic target.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Vascular Biology

Background:

  • Diabetic vascular complications are a major health concern.
  • Advanced glycation end-products (AGEs) contribute to vascular dysfunction.
  • Vascular smooth muscle cell (VSMC) phenotypic transformation plays a key role in these complications.

Purpose of the Study:

  • To investigate the role of Cathepsin D (CTSD) in AGEs-induced VSMC phenotypic transformation.
  • To explore the molecular mechanisms by which CTSD influences VSMC behavior.
  • To evaluate CTSD as a potential therapeutic target for diabetic vascular complications.

Main Methods:

  • Overexpression of CTSD in VSMCs using lentiviral vectors.
  • Assessment of VSMC viability, proliferation, migration, senescence, and apoptosis using various assays (CCK-8, EdU, scratch assay, SA-β-Gal).
  • Transcriptomic and metabolomic analyses to elucidate molecular mechanisms.

Main Results:

  • AGEs treatment inhibited endogenous CTSD expression, promoting VSMC proliferation, migration, senescence, and apoptosis.
  • Overexpression of CTSD counteracted the detrimental effects of AGEs on VSMCs.
  • Transcriptomic and metabolomic data suggested CTSD inhibits the glycolysis pathway in VSMCs.

Conclusions:

  • CTSD plays a critical protective role against AGEs-induced VSMC phenotypic transformation.
  • CTSD may serve as a novel therapeutic target for treating diabetic vascular complications.
  • Further research is needed to fully understand CTSD's molecular mechanisms and clinical applications.