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Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Targeting histone deacetylases: perspectives for epigenetic-based therapy in cardio-cerebrovascular disease
Zi-Ying Wang1, Wen Qin1, Fan Yi1
1Department of Pharmacology, Shandong University School of Medicine, Jinan 250012, China.
Insights
Histone deacetylase (HDAC) enzymes regulate gene transcription and are crucial in cardio-cerebrovascular disease (CCVD) development. Targeting HDACs offers potential new therapies for CCVD.
Area of Science:
- Epigenetics
- Molecular Biology
- Cardiovascular Research
Background:
- Cardio-cerebrovascular disease (CCVD) pathogenesis is complex.
- Histone deacetylase (HDAC) enzymes play a critical role in epigenetic regulation.
- HDACs influence chromatin remodeling and gene transcription, impacting cardiovascular and cerebrovascular health.
Purpose of the Study:
- To review the classification and functions of HDACs.
- To summarize the roles and regulatory mechanisms of HDACs in the cardio-cerebrovascular system.
- To explore the therapeutic potential of targeting HDACs for CCVD treatment.
Main Methods:
- Literature review of experimental and clinical studies.
- Analysis of HDAC classifications (Class I, II, III, IV) and their enzymatic activities.
- Examination of HDAC inhibitors' effects on cardio-cerebrovascular injury.
Main Results:
- HDACs are essential regulators of gene transcription involved in CCVD.
- HDAC inhibitors demonstrate anti-inflammatory and antifibrotic effects in the cardio-cerebrovascular system.
- Understanding HDACs' roles provides insights into CCVD pathogenesis.
Conclusions:
- Epigenetic processes mediated by HDACs are significant in CCVD development.
- Pharmacological targeting of HDACs presents promising therapeutic strategies for CCVD.
- Further research into HDAC-mediated epigenetic mechanisms is warranted for CCVD treatment.
Abstract:
Although the pathogenesis of cardio-cerebrovascular disease (CCVD) is multifactorial, an increasing number of experimental and clinical studies have highlighted the importance of histone deacetylase (HDAC)-mediated epigenetic processes in the development of cardio-cerebrovascular injury. HDACs are a family of enzymes to balance the acetylation activities of histone acetyltransferases on chromatin remodeling and play essential roles in regulating gene transcription. To date, 18 mammalian HDACs are identified and grouped into four classes based on similarity to yeast orthologs. The zinc-dependent HDAC family currently consists of 11 members divided into three classes (class I, II, and IV) on the basis of structure, sequence homology, and domain organization. In comparison, class III HDACs (also known as the sirtuins) are composed of a family of NAD(+)-dependent protein-modifying enzymes related to the Sir2 gene. HDAC inhibitors are a group of compounds that block HDAC activities typically by binding to the zinc-containing catalytic domain of HDACs and have displayed anti-inflammatory and antifibrotic effects in the cardio-cerebrovascular system. In this review, we summarize the current knowledge about classifications, functions of HDACs and their roles and regulatory mechanisms in the cardio-cerebrovascular system. Pharmacological targeting of HDAC-mediated epigenetic processes may open new therapeutic avenues for the treatment of CCVD.
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