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Updated: Jul 3, 2025

Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
HDAC2 counteracts vascular calcification by activating autophagy in chronic kidney disease
Guangyu Zhou1, Pai Liu1, Chen Zhang1
1Department of Nephrology, Shengjing Hospital of China Medical University, Shenyang, China.
Insights
Histone Deacetylase 2 (HDAC2) protects against vascular calcification in chronic kidney disease (CKD) by activating autophagy. This finding offers new insights into CKD-related cardiovascular disease mechanisms.
Area of Science:
- Cardiovascular Biology
- Nephrology
- Molecular Biology
Background:
- Vascular calcification is a significant risk factor for cardiovascular mortality, particularly in chronic kidney disease (CKD).
- Histone acetyltransferase inhibition shows protective effects, but the role of Histone Deacetylase 2 (HDAC2) in CKD vascular calcification is unknown.
Purpose of the Study:
- To investigate the role and molecular mechanisms of HDAC2 in vascular calcification associated with CKD.
Main Methods:
- Established in vivo (high adenine/phosphate diet mice) and in vitro (β-glycerophosphate-stimulated human aortic VSMCs) CKD models.
- Assessed HDAC2 expression, vascular calcification markers (OPN, OCN, α-SMA, SM22α), and calcium deposition.
- Investigated the role of autophagy by measuring LC3II/I and p62 levels and using an autophagy inhibitor (3-MA).
Main Results:
- HDAC2 expression was reduced in CKD models.
- HDAC2 overexpression attenuated vascular calcification markers and calcium deposition in vivo and inhibited osteogenic differentiation in vitro.
- HDAC2 overexpression enhanced autophagic flux, and autophagy inhibition blocked its protective effects.
Conclusions:
- HDAC2 plays a protective role against vascular calcification in CKD.
- HDAC2 activation of autophagy is a key mechanism underlying its protective effect.
- HDAC2 represents a potential therapeutic target for managing vascular calcification in CKD.
Abstract:
Vascular calcification is a major risk factor for cardiovascular disease mortality, with a significant prevalence in chronic kidney disease (CKD). Pharmacological inhibition of histone acetyltransferase has been proven to protect against from vascular calcification. However, the role of Histone Deacetylase 2 (HDAC2) and molecular mechanisms in vascular calcification of CKD remains unknown. An in vivo model of CKD was established using mouse fed with a high adenine and phosphate diet, and an in vitro model was produced using human aortic vascular smooth muscle cells (VSMCs) stimulated with β-glycerophosphate (β-GP). HDAC2 expression was found to be reduced in medial artery of CKD mice and β-GP-induced VSMCs. Overexpression of HDAC2 attenuated OPN and OCN upregulation, α-SMA and SM22α downregulation, and calcium deposition in aortas of CKD. The in vitro results also demonstrated that β-GP-induced osteogenic differentiation was inhibited by HDAC2. Furthermore, we found that HDAC2 overexpression caused an increase in LC3II/I, a decrease in p62, and an induction of autophagic flux. Inhibition of autophagy using its specific inhibitor 3-MA blocked HDAC2's protective effect on osteogenic differentiation in β-GP-treated VSMCs. Taken together, these results suggest that HDAC2 may protect against vascular calcification by the activation of autophagy, laying out a novel insight for the molecular mechanism in vascular calcification of CKD.
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