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Published on: December 1, 2016
Targeting Histone Deacetylases with Natural and Synthetic Agents: An Emerging Anticancer Strategy
Amit Kumar Singh1, Anupam Bishayee2, Abhay K Pandey3
1Department of Biochemistry, University of Allahabad, Allahabad 211 002, Uttar Pradesh, India. amitfbs21@gmail.com.
Abstract:
Cancer initiation and progression are the result of genetic and/or epigenetic alterations. Acetylation-mediated histone/non-histone protein modification plays an important role in the epigenetic regulation of gene expression. Histone modification is controlled by the balance between histone acetyltransferase and (HAT) and histone deacetylase (HDAC) enzymes. Imbalance between the activities of these two enzymes is associated with various forms of cancer. Histone deacetylase inhibitors (HDACi) regulate the activity of HDACs and are being used in cancer treatment either alone or in combination with other chemotherapeutic drugs/radiotherapy. The Food and Drug Administration (FDA) has already approved four compounds, namely vorinostat, romidepsin, belinostat, and panobinostat, as HDACi for the treatment of cancer. Several other HDACi of natural and synthetic origin are under clinical trial for the evaluation of efficiency and side-effects. Natural compounds of plant, fungus, and actinomycetes origin, such as phenolics, polyketides, tetrapeptide, terpenoids, alkaloids, and hydoxamic acid, have been reported to show potential HDAC-inhibitory activity. Several HDACi of natural and dietary origin are butein, protocatechuic aldehyde, kaempferol (grapes, green tea, tomatoes, potatoes, and onions), resveratrol (grapes, red wine, blueberries and peanuts), sinapinic acid (wine and vinegar), diallyl disulfide (garlic), and zerumbone (ginger). HDACi exhibit their antitumor effect by the activation of cell cycle arrest, induction of apoptosis and autophagy, angiogenesis inhibition, increased reactive oxygen species generation causing oxidative stress, and mitotic cell death in cancer cells. This review summarizes the HDACs classification, their aberrant expression in cancerous tissue, structures, sources, and the anticancer mechanisms of HDACi, as well as HDACi that are either FDA-approved or under clinical trials.
Insights
Histone deacetylase inhibitors (HDACi) show promise in cancer treatment by targeting epigenetic alterations. This review details HDACi classification, sources, and their anticancer mechanisms, including FDA-approved drugs and those in clinical trials.
Area of Science:
- Epigenetics and Molecular Oncology
- Pharmacology and Drug Discovery
Background:
- Cancer arises from genetic and epigenetic changes, with histone acetylation playing a key regulatory role.
- Histone deacetylase (HDAC) enzymes are crucial in controlling gene expression, and their dysregulation is linked to cancer.
- Histone deacetylase inhibitors (HDACi) are a class of drugs that modulate HDAC activity for therapeutic benefit.
Purpose of the Study:
- To review the classification, aberrant expression, and sources of HDACs in cancer.
- To summarize the anticancer mechanisms of HDAC inhibitors.
- To provide an overview of FDA-approved and investigational HDACi for cancer treatment.
Main Methods:
- Literature review of HDACs and HDAC inhibitors in cancer.
- Analysis of HDAC classification, expression patterns in cancerous tissues, and natural/synthetic sources of HDACi.
- Summary of the molecular mechanisms underlying the antitumor effects of HDAC inhibitors.
Main Results:
- HDACs are classified based on their structure and function, with altered expression observed in various cancers.
- HDAC inhibitors exhibit anticancer effects through cell cycle arrest, apoptosis induction, and other mechanisms.
- Several HDAC inhibitors, including vorinostat, romidepsin, belinostat, and panobinostat, are FDA-approved; many others are in clinical trials.
Conclusions:
- HDAC inhibitors represent a significant therapeutic strategy for cancer, targeting key epigenetic regulatory pathways.
- Natural compounds with HDAC inhibitory activity offer potential for novel cancer treatments.
- Further research into HDACi mechanisms and clinical efficacy is ongoing for various cancer types.
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