Vascular Smooth Muscle Cell-Specific BCAT2 Deficiency Attenuates Diabetic Atherosclerotic Calcification via Histone

Lili Zhang1,2, Yujie Yang1,2, Wei Yuan1,2

  • 1Department of Cardiology, Affiliated Hospital of Jiangsu University, Zhenjiang 212001, China.

PubMed

Insights

Branched-chain amino acid transaminase 2 (BCAT2) drives diabetic vascular calcification by promoting osteogenic differentiation of smooth muscle cells. Targeting the BCAT2-branched-chain α-ketoacid (BCKA) pathway may offer new therapeutic strategies for diabetic cardiovascular complications.

Area of Science:

  • Biochemistry and Metabolism
  • Cardiovascular Research
  • Diabetic Complications

Background:

  • Diabetic patients face increased cardiovascular event risks due to vascular calcification.
  • The precise therapeutic targets for diabetic atherosclerotic calcification remain elusive.
  • Branched-chain amino acid transaminase 2 (BCAT2), involved in branched-chain amino acid (BCAA) metabolism, is a potential factor in diabetic complications.

Purpose of the Study:

  • To investigate the role of BCAT2 in the development of diabetic atherosclerotic calcification.
  • To elucidate the molecular mechanisms underlying BCAT2's contribution to vascular calcification in diabetes.

Main Methods:

  • Utilized airflow-assisted desorption electrospray ionization mass spectrometry imaging (AFADESI-MSI) for spatial metabolite analysis in arterial sections from diabetic foot amputations.
  • Analyzed single-cell RNA sequencing datasets to identify BCAA catabolism enzyme expression in diabetic arteries.
  • Generated ApoE knockout mice with vascular smooth muscle cell (VSMC)-specific BCAT2 deletion to model diabetic atherosclerotic calcification.

Main Results:

  • Spatial metabolomics revealed enhanced BCAA catabolism in calcified arteries from diabetic patients.
  • Single-cell transcriptomics identified upregulated BCAT2 in VSMCs of calcified diabetic arteries.
  • VSMC-specific BCAT2 deficiency significantly reduced diabetic atherosclerotic calcification, with supplementation of branched-chain α-ketoacids (BCKA) promoting VSMC osteogenic differentiation.

Conclusions:

  • Discovered a novel role for BCAA catabolism, specifically the BCAT2-BCKA axis, in diabetic atherosclerotic calcification.
  • Demonstrated that BCAT2 promotes VSMC osteoblastic differentiation by epigenetically regulating RUNX2 via histone propionylation.
  • Identified the BCAT2-BCKA pathway as a potential therapeutic target for mitigating diabetic vascular calcification.