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Retrofitting the Heart: Explaining the Enigmatic Septal Thickening in Hypertrophic Cardiomyopathy
Jan M Federspiel1,2, Jan-Christian Reil3, Anton Xu1
1Comprehensive Heart Failure Center, Department of Translational Science University Clinic Würzburg, Germany (J.M.F., A.X., A.B., C.M., V.S.).
Insights
Hypertrophic cardiomyopathy, a genetic heart condition, involves thickening of the left ventricle. This study explains how initial septal shape and hypercontractility lead to protective remodeling and hypertrophy in the interventricular septum.
Area of Science:
- Cardiology
- Genetics
- Biomedical Engineering
Background:
- Hypertrophic cardiomyopathy (HCM) is the most common genetic cardiac disease, characterized by left ventricular hypertrophy.
- Diastolic dysfunction, preceding hypertrophy, is linked to hypercontractility and myofibril asynchrony.
- Septal thickening is a primary feature of HCM, but its cause is not fully understood.
Purpose of the Study:
- To propose a novel hypothesis explaining the predisposition of the interventricular septum to hypertrophy in HCM.
- To elucidate the role of baseline muscle fiber geometry and biomechanical stress in septal remodeling.
Main Methods:
- Conceptual analysis of cardiac mechanics and cytoskeletal remodeling.
- Application of biomechanical principles, including Laplace Law.
- Drawing parallels with structural engineering principles for protective adaptation.
Main Results:
- Alterations in congenital muscle fiber geometry predispose the septum to isometric contraction.
- Hypercontractility and outflow tract obstruction exacerbate biomechanical stress on the septum.
- The septum remodels by synthesizing viscoelastic elements, leading to hypertrophy as a protective mechanism.
Conclusions:
- The study provides a coherent explanation for septal hypertrophy in HCM, linking it to biomechanical adaptation.
- This remodeling attenuates myofibril shortening and reduces cavity tension, protecting the heart.
- Understanding these mechanisms can inform future therapeutic strategies for HCM.
Abstract:
Hypertrophic cardiomyopathy is the most common genetic cardiac disease and is characterized by left ventricular hypertrophy. Although this hypertrophy often associates with sarcomeric gene mutations, nongenetic factors also contribute to the disease, leading to diastolic dysfunction. Notably, this dysfunction manifests before hypertrophy and is linked to hypercontractility, as well as nonuniform contraction and relaxation (myofibril asynchrony) of the myocardium. Although the distribution of hypertrophy in hypertrophic cardiomyopathy can vary both between and within individuals, in most cases, it is primarily confined to the interventricular septum. The reasons for septal thickening remain largely unknown. In this article, we propose that alterations in muscle fiber geometry, present from birth, dictate the septal shape. When combined with hypercontractility and exacerbated by left ventricular outflow tract obstruction, these factors predispose the septum to an isometric type of contraction during systole, consequently constraining its mobility. This contraction, or more accurately, this focal increase in biomechanical stress, prompts the septum to adapt and undergo remodeling. Drawing a parallel, this is reminiscent of how earthquake-resistant buildings are retrofitted with vibration dampers to absorb the majority of the shock motion and load. Similarly, the heart adapts by synthesizing viscoelastic elements such as microtubules, titin, desmin, collagen, and intercalated disc components. This pronounced remodeling in the cytoskeletal structure leads to noticeable septal hypertrophy. This structural adaptation acts as a protective measure against damage by attenuating myofibril shortening while reducing cavity tension according to Laplace Law. By examining these events, we provide a coherent explanation for the septum's predisposition toward hypertrophy.
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