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Updated: Jan 31, 2026

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Chronic Calmodulin-Kinase II Activation Drives Disease Progression in Mutation-Specific Hypertrophic Cardiomyopathy
Sarah J Lehman1, Lauren Tal-Grinspan2, Melissa L Lynn3
1Department of Physiological Sciences (S.J.L.), University of Arizona, Tucson.
Insights
Targeting activated calmodulin kinase II (CaMKII) shows promise for hypertrophic cardiomyopathy (HCM) treatment. However, therapeutic effects are mutation-specific, necessitating molecular-level understanding for personalized interventions.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Genetic causes of hypertrophic cardiomyopathy (HCM) are known, but targeted therapies lag due to incomplete understanding of mutation-induced remodeling.
- Similar mutations in sarcomeric genes can cause varying disease severity, emphasizing the need for molecular-level insights.
- Calcium homeostasis dysregulation is linked to HCM progression, but specific mutation effects remain unclear.
Purpose of the Study:
- To investigate the impact of early intervention in calcium homeostasis on sarcomeric HCM.
- To evaluate the efficacy of calmodulin kinase II (CaMKII) inhibition and diltiazem in mouse models of HCM with differential calcium handling.
Main Methods:
- Utilized two mouse models of sarcomeric HCM (cardiac troponin T R92L and R92W) exhibiting distinct calcium dysregulation.
- Administered AC3I peptide to inhibit CaMKII and diltiazem (L-type calcium channel antagonist).
- Assessed cardiac function, left ventricular and atrial remodeling via echocardiography and atrial mass, and sarcoplasmic reticulum Ca2+ATPase activity.
Main Results:
- CaMKII inhibition improved diastolic function and reduced atrial remodeling in R92W mice, correlating with enhanced Ca2+ATPase activity.
- CaMKII inhibition worsened cardiac handling, remodeling, and function in R92L mice.
- Diltiazem halted diastolic dysfunction progression only in R92W mice, without affecting cardiac remodeling in either model.
Conclusions:
- Activated CaMKII plays a mutation-dependent role in HCM progression, suggesting it as a precise therapeutic target for specific patient cohorts.
- Mutation-specific responses to interventions like diltiazem underscore the need for molecular-level understanding to guide precise therapeutic strategies in HCM.
Background:
Although the genetic causes of hypertrophic cardiomyopathy (HCM) are widely recognized, considerable lag in the development of targeted therapeutics has limited interventions to symptom palliation. This is in part attributable to an incomplete understanding of how point mutations trigger pathogenic remodeling. As a further complication, similar mutations within sarcomeric genes can result in differential disease severity, highlighting the need to understand the mechanism of progression at the molecular level. One pathway commonly linked to HCM progression is calcium homeostasis dysregulation, though how specific mutations disrupt calcium homeostasis remains unclear.
Methods:
To evaluate the effects of early intervention in calcium homeostasis, we used 2 mouse models of sarcomeric HCM (cardiac troponin T R92L and R92W) with differential myocellular calcium dysregulation and disease presentation. Two modes of intervention were tested: inhibition of the autoactivated calcium-dependent kinase (calmodulin kinase II [CaMKII]) via the AC3I peptide and diltiazem, an L-type calcium channel antagonist. Two-dimensional echocardiography was used to determine cardiac function and left ventricular remodeling, and atrial remodeling was monitored via atrial mass. Sarcoplasmic reticulum Ca2+ATPase activity was measured as an index of myocellular calcium handling and coupled to its regulation via the phosphorylation status of phospholamban.
Results:
We measured an increase in phosphorylation of CaMKII in R92W animals by 6 months of age, indicating increased autonomous activity of the kinase in these animals. Inhibition of CaMKII led to recovery of diastolic function and partially blunted atrial remodeling in R92W mice. This improved function was coupled to increased sarcoplasmic reticulum Ca2+ATPase activity in the R92W animals despite reduction of CaMKII activation, likely indicating improvement in myocellular calcium handling. In contrast, inhibition of CaMKII in R92L animals led to worsened myocellular calcium handling, remodeling, and function. Diltiazem-HCl arrested diastolic dysfunction progression in R92W animals only, with no improvement in cardiac remodeling in either genotype.
Conclusions:
We propose a highly specific, mutation-dependent role of activated CaMKII in HCM progression and a precise therapeutic target for clinical management of HCM in selected cohorts. Moreover, the mutation-specific response elicited with diltiazem highlights the necessity to understand mutation-dependent progression at a molecular level to precisely intervene in disease progression.
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