Expression of high-mobility group box protein 1 in diabetic foot atherogenesis

C F Tsao1, W T Huang2, T T Liu2

  • 1Mitochondrial Research Unit, Department of Internal Medicine, Kaohsiung Chang Gung Memorial Hospital, Chang Gung University College of Medicine, Kaohsiung, Taiwan.

Insights

High mobility group box 1 (HMGB1) is elevated in diabetic peripheral arterial occlusive disease (PAOD), driving inflammation and oxidative damage. HMGB1 may also influence mitochondrial DNA and autophagy in diabetic vascular disease.

Area of Science:

  • Vascular Biology
  • Immunology
  • Metabolic Disease

Background:

  • High mobility group box 1 (HMGB1) is implicated in vascular injury but its role in peripheral arterial occlusive disease (PAOD) is unclear.
  • The specific mechanisms by which HMGB1 contributes to vascular pathology in diabetes require further elucidation.

Purpose of the Study:

  • To investigate the role of HMGB1 in diabetic patients with PAOD.
  • To explore the association between HMGB1 expression and inflammatory markers, oxidative stress, and autophagy in diabetic PAOD.

Main Methods:

  • Comparative analysis of HMGB1 and inflammatory marker expression in diabetic PAOD patients versus non-diabetic traumatic amputation controls.
  • Immunohistochemical staining for HMGB1, inflammatory markers (CD3, CD68), oxidative stress markers (8-hydroxyguanosine, malondialdehyde), and autophagy markers (LC3A/B).
  • Quantification of mitochondrial DNA copy number using real-time PCR.

Main Results:

  • Significantly higher HMGB1 expression in vessels of diabetic PAOD patients compared to controls.
  • Positive correlations between arterial stenosis grade and HMGB1, oxidative stress markers, and inflammatory cell markers.
  • HMGB1 expression correlated with increased oxidative damage, inflammatory markers, nuclear factor-kB, and autophagy markers in PAOD patients.

Conclusions:

  • HMGB1 acts as an inflammatory mediator in diabetic PAOD, contributing to oxidative damage and atherogenesis.
  • HMGB1 may play a dual role, potentially compensating for increased mitochondrial DNA and autophagy.