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Published on: October 4, 2019
Therapeutic potential of chalcones as cardiovascular agents
Debarshi Kar Mahapatra1, Sanjay Kumar Bharti1
1Institute of Pharmaceutical Sciences, Guru Ghasidas Vishwavidyalaya (A Central University), Bilaspur, 495009, Chhattisgarh, India.
Insights
Chalcones show promise as cardiovascular agents by targeting key pathways involved in heart disease, obesity, and hypertension. This review explores their therapeutic potential and guides the development of new cardioprotective drugs.
Area of Science:
- Medicinal Chemistry
- Pharmacology
- Cardiovascular Research
Background:
- Cardiovascular diseases (CVDs) are a leading global cause of mortality, necessitating novel therapeutic strategies.
- Obesity and atherosclerosis are major contributors to CVDs, highlighting the need for effective management agents.
- Current treatments face limitations, driving the search for new drugs targeting cardiovascular, hematological, and anti-obesity pathways.
Purpose of the Study:
- To comprehensively review chalcones as potential cardiovascular agents.
- To explore their therapeutic targets, structure-activity relationships (SARs), and mechanisms of action (MOAs).
- To guide the design of novel chalcone derivatives for cardiovascular diseases.
Main Methods:
- Literature review of natural and synthetic chalcones with cardiovascular relevance.
- Analysis of chalcone scaffolds, derivatives, and structural modifications.
- Examination of SARs and MOAs against various cardiovascular targets.
Main Results:
- Chalcones exhibit potential in inhibiting key targets such as ACE, CETP, DGAT, ACAT, PL, LPL, ion channels, and COX-1.
- Diverse chalcone scaffolds, including modified aryl rings and heteroaryl replacements, show promising activities.
- Well-defined MOAs and SARs of active chalcones are identified.
Conclusions:
- Chalcones represent a promising class of compounds for developing novel cardiovascular therapies.
- Structural insights and SAR data can guide the design of potent, selective, and cost-effective chalcone derivatives.
- Further research into chalcones could lead to new anti-hypertensive, anti-anginal, anti-arrhythmic, and cardioprotective agents.
Abstract:
Cardiovascular diseases are the leading cause of death affecting 17.3 million people across the globe and are estimated to affect 23.3 million people by year 2030. In recent years, about 7.3 million people died due to coronary heart disease, 9.4 million deaths due to high blood pressure and 6.2 million due to stroke, where obesity and atherosclerotic progression remain the chief pathological factors. The search for newer and better cardiovascular agents is the foremost need to manage cardiac patient population across the world. Several natural and (semi) synthetic chalcones deserve the credit of being potential candidates to inhibit various cardiovascular, hematological and anti-obesity targets like angiotensin converting enzyme (ACE), cholesteryl ester transfer protein (CETP), diacylglycerol acyltransferase (DGAT), acyl-coenzyme A: cholesterol acyltransferase (ACAT), pancreatic lipase (PL), lipoprotein lipase (LPL), calcium (Ca(2+))/potassium (K(+)) channel, COX-1, TXA2 and TXB2. In this review, a comprehensive study of chalcones, their therapeutic targets, structure activity relationships (SARs), mechanisms of actions (MOAs) have been discussed. Chemically diverse chalcone scaffolds, their derivatives including structural manipulation of both aryl rings, replacement with heteroaryl scaffold(s) and hybridization through conjugation with other pharmacologically active scaffold have been highlighted. Chalcones which showed promising activity and have a well-defined MOAs, SARs must be considered as prototype for the design and development of potential anti-hypertensive, anti-anginal, anti-arrhythmic and cardioprotective agents. With the knowledge of these molecular targets, structural insights and SARs, this review may be helpful for (medicinal) chemists to design more potent, safe, selective and cost effective chalcone derivatives as potential cardiovascular agents.
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