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Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
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.
Abstract:
Background: Vascular calcification is a major cause of adverse outcomes of acute cardiovascular events in diabetic patients. However, the effective therapeutic target for diabetic atherosclerotic calcification remains unclear. Branched-chain amino acid transaminase 2 (BCAT2), a key rate-limiting enzyme of branched-chain amino acid (BCAA) catabolism, may play a potential role in the development of diabetic complications. This study aimed to elucidate the role of BCAT2 in diabetic atherosclerotic calcification. Methods: Airflow-assisted desorption electrospray ionization mass spectrometry imaging (AFADESI-MSI) was employed to investigate the spatial distribution of metabolites in frozen arterial sections obtained from diabetic foot amputations. Single-cell RNA sequencing datasets from arteries of diabetic foot amputations were used to identify the expression of metabolic enzymes in the BCAA catabolism. ApoE knockout mice with specific deletion of BCAT2 in vascular smooth muscle cells (VSMCs) were generated, and a diabetic atherosclerotic calcification model was established to evaluate the impact of BCAT2 in diabetic atherosclerotic calcification. Further, the gene regulatory mechanisms of BCAT2 in diabetic atherosclerotic calcification were investigated. Results: BCAA catabolism was enhanced in the calcified anterior tibial arteries from diabetic foot amputation revealed by spatial metabolomics. Furthermore, BCAT2 was found to be up-regulated in VSMCs of calcified anterior tibial arteries from diabetic foot amputation by single-cell transcriptomics. Notably, VSMC-specific BCAT2 deficiency attenuated diabetic atherosclerotic calcification without sex bias. Further experiments revealed that branched-chain α-ketoacids (BCKA) supplement, especially α-keto-β-methylvaleric acid (KMV) and α-ketoisovaleric acid (KIV), promoted osteogenic differentiation of VSMCs and diabetic atherosclerotic calcification. Mechanistically, VSMC-specific BCAT2 deficiency suppressed the generation of BCKA-derived propionyl-CoA, mitigating histone propionylation at the promoter of RUNX2, and thereby osteogenic differentiation of VSMCs and diabetic atherosclerotic calcification. Conclusions: Our study demonstrates a previously unrecognized role of BCAA catabolism in diabetic atherosclerotic calcification and further delineates that the BCAT2-BCKA axis contributes to the osteoblastic differentiation of VSMCs by epigenetically modulating RUNX2 expression via histone propionylation.
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.
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