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Published on: March 3, 2021
Sarcomere neutralization in inherited cardiomyopathy: small-molecule proof-of-concept to correct hyper-Ca2+-sensitive
Brian R Thompson1, Joshua Martindale1, Joseph M Metzger2
1Department of Integrative Biology and Physiology, University of Minnesota Medical School, Minneapolis, Minnesota.
Insights
Small molecules can neutralize the heart
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Pharmacology
Background:
- Sarcomere dysfunction, particularly increased calcium sensitivity, underlies cardiomyopathies like hypertrophic and restrictive cardiomyopathy (HCM/RCM).
- Genetic mutations in sarcomeric proteins are primary causes of inherited HCM/RCM.
- Targeting sarcomere activation offers a potential therapeutic avenue for these heart conditions.
Purpose of the Study:
- To investigate small-molecule sarcomere neutralization as a therapeutic strategy for HCM/RCM.
- To evaluate the efficacy of compound W7 as a calcium desensitizer in cardiac myocytes and whole hearts.
Main Methods:
- Utilized adult cardiac myocytes and Langendorff-perfused whole hearts from R193H cardiac troponin I (cTnI) transgenic mice, an inherited cardiomyopathy model.
- Employed an in vitro alkalosis model to mimic acquired heightened calcium sensitivity.
- Administered W7 to assess its effects on contractility, sarcomere length, relaxation, and end-diastolic pressures.
Main Results:
- W7 acutely decreased myocyte contractility in a dose-dependent, calcium-independent manner.
- W7 rapidly corrected heightened contractility and shortened sarcomere length in alkalosis and R193H cTnI models.
- W7 normalized elevated end-diastolic pressures in R193H cTnI hearts under pacing stress, indicating a sarcomere-intrinsic effect.
Conclusions:
- Small-molecule sarcomere neutralization, exemplified by W7, shows promise for treating hyper-calcium-sensitive sarcomere dysfunction.
- These findings support W7 as a proof-of-concept therapeutic agent for cardiomyopathies driven by sarcomere alterations.
- Further research into sarcomere-targeting therapies is warranted for HCM/RCM.
Abstract:
The sarcomere is the functional unit of the heart. Alterations in sarcomere activation lead to disease states such as hypertrophic and restrictive cardiomyopathy (HCM/RCM). Mutations in many of the sarcomeric genes are causal for HCM/RCM. In most cases, these mutations result in increased Ca(2+) sensitivity of the sarcomere, giving rise to altered systolic and diastolic function. There is emerging evidence that small-molecule sarcomere neutralization is a potential therapeutic strategy for HCM/RCM. To pursue proof-of-concept, W7 was used here because of its well-known Ca(2+) desensitizer biochemical effects at the level of cardiac troponin C. Acute treatment of adult cardiac myocytes with W7 caused a dose-dependent (1-10 μM) decrease in contractility in a Ca(2+)-independent manner. Alkalosis was used as an in vitro experimental model of acquired heightened Ca(2+) sensitivity, resulting in increased live cell contractility and decreased baseline sarcomere length, which were rapidly corrected with W7. As an inherited cardiomyopathy model, R193H cardiac troponin I (cTnI) transgenic myocytes showed significant decreased baseline sarcomere length and slowed relaxation that were rapidly and dose-dependently corrected by W7. Langendorff whole heart pacing stress showed that R193H cTnI transgenic hearts had elevated end-diastolic pressures at all pacing frequencies compared with hearts from nontransgenic mice. Acute treatment with W7 rapidly restored end-diastolic pressures to normal values in R193H cTnI hearts, supporting a sarcomere intrinsic mechanism of dysfunction. The known off-target effects of W7 notwithstanding, these results provide further proof-of-concept that small-molecule-based sarcomere neutralization is a potential approach to remediate hyper-Ca(2+)-sensitive sarcomere function.
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