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Published on: August 17, 2019
Small Molecules acting on Myofilaments as Treatments for Heart and Skeletal Muscle Diseases
Khulud Alsulami1,2, Steven Marston1
1Imperial Centre for Translational and Experimental Medicine, Cardiovascular Division, National Heart and Lung Institute, Imperial College London, London W12 0NN, UK.
Insights
Targeting the heart
Area of Science:
- Cardiology
- Pharmacology
- Biochemistry
Background:
- Hypertrophic cardiomyopathy (HCM) and dilated cardiomyopathy (DCM) are prevalent, progressive heart conditions.
- Current treatments manage symptoms, not underlying mechanisms, often due to sarcomere dysfunction.
- Previous indirect approaches to improve cardiac contractility had adverse effects.
Purpose of the Study:
- To review small molecules directly targeting the sarcomere for potential cardiomyopathy treatment.
- To assess the therapeutic suitability of these molecules using a scoring system.
- To identify promising drug candidates for hypertrophic cardiomyopathy, dilated cardiomyopathy, and heart failure.
Main Methods:
- Conducted a literature review of 21 small molecules targeting five different sarcomere-related targets.
- Developed and applied a scoring system evaluating eight criteria for therapeutic suitability.
- Analyzed data on target specificity, physicochemical properties, and clinical trial outcomes.
Main Results:
- Most reviewed small molecules failed due to poor specificity or properties.
- Six compounds demonstrated potential therapeutic value: Omecamtiv Mecarbil, Danicamtiv, Mavacamten, CK-274, MYK-581, and AMG 594.
- Mavacamten showed efficacy in reducing left ventricular outflow tract obstruction and improving HCM patient health status.
Conclusions:
- Directly targeting the sarcomere with small molecules is a promising strategy for cardiomyopathy.
- Myosin modulators (activators and inhibitors) and calcium sensitizers show therapeutic potential.
- Further development of sarcomere-targeting agents, including novel 'recouplers,' is warranted.
Abstract:
Hypertrophic cardiomyopathy (HCM) and dilated cardiomyopathy (DCM) are the most prevalent forms of the chronic and progressive pathological condition known as cardiomyopathy. These diseases have different aetiologies; however, they share the feature of haemodynamic abnormalities, which is mainly due to dysfunction in the contractile proteins that make up the contractile unit known as the sarcomere. To date, pharmacological treatment options are not disease-specific and rather focus on managing the symptoms, without addressing the disease mechanism. Earliest attempts at improving cardiac contractility by modulating the sarcomere indirectly (inotropes) resulted in unwanted effects. In contrast, targeting the sarcomere directly, aided by high-throughput screening systems, could identify small molecules with a superior therapeutic value in cardiac muscle disorders. Herein, an extensive literature review of 21 small molecules directed to five different targets was conducted. A simple scoring system was created to assess the suitability of small molecules for therapy by evaluating them in eight different criteria. Most of the compounds failed due to lack of target specificity or poor physicochemical properties. Six compounds stood out, showing a potential therapeutic value in HCM, DCM or heart failure (HF). Omecamtiv Mecarbil and Danicamtiv (myosin activators), Mavacamten, CK-274 and MYK-581 (myosin inhibitors) and AMG 594 (Ca2+-sensitiser) are all small molecules that allosterically modulate troponin or myosin. Omecamtiv Mecarbil showed limited efficacy in phase III GALACTIC-HF trial, while, results from phase III EXPLORER-HCM trial were recently published, indicating that Mavacamten reduced left ventricular outflow tract (LVOT) obstruction and diastolic dysfunction and improved the health status of patients with HCM. A novel category of small molecules known as "recouplers" was reported to target a phenomenon termed uncoupling commonly found in familial cardiomyopathies but has not progressed beyond preclinical work. In conclusion, the contractile apparatus is a promising target for new drug development.
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