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Published on: June 29, 2013
Epigenetics in vascular disease - therapeutic potential of new agents
Simon S Xu, Saydul Alam, Andriana Margariti1
1Cardiovascular Division, King's College London, The James Black Centre, 125 Coldharbour Lane, London SE5 9NU, UK. andriani.margariti@kcl.ac.uk.
Insights
Epigenetic modifications, particularly histone deacetylase (HDAC) activity, are key in vascular disease development. Inhibiting HDACs offers a promising new therapeutic strategy for treating atherosclerosis and other vascular conditions.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Molecular Medicine
Background:
- Vascular diseases are a leading cause of mortality globally.
- Their development involves complex genetic and environmental interactions.
- Epigenetic modifications are increasingly recognized as critical mediators, linking environmental factors to gene regulation in vascular cells.
Purpose of the Study:
- To review recent advances in the epigenetics of vascular diseases.
- To focus on the role of the histone deacetylase (HDAC) family in atherosclerosis.
- To discuss the mechanisms of histone acetylation in vascular cells and explore therapeutic potential.
Main Methods:
- Literature review of recent studies on epigenetics and vascular diseases.
- Analysis of the role of HDAC enzymes in endothelial integrity, smooth muscle proliferation, and arteriosclerosis.
- Examination of animal models demonstrating the effects of HDAC inhibition on vascular disease progression.
Main Results:
- Histone deacetylase (HDAC) enzymes play crucial roles in vascular cell function and arteriosclerosis.
- Specific HDAC family members exhibit distinct effects on vascular cell growth and death.
- Inhibition of HDACs in animal models has shown significant effects on arteriosclerosis development.
Conclusions:
- Epigenetic regulation, specifically histone acetylation modulated by HDACs, is integral to vascular disease pathogenesis.
- HDACs represent a potential therapeutic target for vascular diseases like atherosclerosis.
- Targeting epigenetic processes offers a novel treatment strategy for vascular conditions.
Abstract:
Vascular diseases, including atherosclerosis, angioplasty-induced restenosis, vessel graft arteriosclerosis and hypertension-related stenosis, remain the most prevalent cause of death in the developed world. The aetiology of vascular diseases is multifactorial with both genetic and environmental factors. Recently, some of the most promising research identifies the epigenetic modification of the genome to play a major role in the disease development, linking the environmental insults with gene regulation. In this process, modification of DNA by methylation, and histone modification by acetylation, methylation, phosphorylation and/or SUMOylation are reported. Importantly, recent studies demonstrated that histone deacetylase (HDAC) enzymes are crucial in endothelial integrity, smooth muscle proliferation and in the formation of arteriosclerosis in animal models. The study of HDACs has shown remarkable specificity of HDAC family members in vascular cell growth/death that influences the disease process. Interestingly, the effects of HDACs on arteriosclerosis development in animal models have been observed after HDAC inhibition using specific inhibitors. This provides a new approach for the treatment of vascular disease using the agents that influence the epigenetic process in vascular cells. This review updates the rapid advances in epigenetics of vascular diseases focusing on the role of HDAC family in atherosclerosis. It will also discuss the underlying mechanisms of histone acetylation in vascular cells and highlight the therapeutic potential of such agents.
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