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Mechanical Control of Relaxation Using Intact Cardiac Trabeculae
Published on: February 17, 2023
Emerging Concepts of Mechanisms Controlling Cardiac Tension: Focus on Familial Dilated Cardiomyopathy (DCM) and
R John Solaro1, Paul H Goldspink1, Beata M Wolska1,2
1Department of Physiology and Biophysics, Center for Cardiovascular Research, University of Illinois at Chicago, Chicago, IL 60612, USA.
Abstract:
Novel therapies for the treatment of familial dilated cardiomyopathy (DCM) are lacking. Shaping research directions to clinical needs is critical. Triggers for the progression of the disorder commonly occur due to specific gene variants that affect the production of sarcomeric/cytoskeletal proteins. Generally, these variants cause a decrease in tension by the myofilaments, resulting in signaling abnormalities within the micro-environment, which over time result in structural and functional maladaptations, leading to heart failure (HF). Current concepts support the hypothesis that the mutant sarcomere proteins induce a causal depression in the tension-time integral (TTI) of linear preparations of cardiac muscle. However, molecular mechanisms underlying tension generation particularly concerning mutant proteins and their impact on sarcomere molecular signaling are currently controversial. Thus, there is a need for clarification as to how mutant proteins affect sarcomere molecular signaling in the etiology and progression of DCM. A main topic in this controversy is the control of the number of tension-generating myosin heads reacting with the thin filament. One line of investigation proposes that this number is determined by changes in the ratio of myosin heads in a sequestered super-relaxed state (SRX) or in a disordered relaxed state (DRX) poised for force generation upon the Ca2+ activation of the thin filament. Contrasting evidence from nanometer-micrometer-scale X-ray diffraction in intact trabeculae indicates that the SRX/DRX states may have a lesser role. Instead, the proposal is that myosin heads are in a basal OFF state in relaxation then transfer to an ON state through a mechano-sensing mechanism induced during early thin filament activation and increasing thick filament strain. Recent evidence about the modulation of these mechanisms by protein phosphorylation has also introduced a need for reconsidering the control of tension. We discuss these mechanisms that lead to different ideas related to how tension is disturbed by levels of mutant sarcomere proteins linked to the expression of gene variants in the complex landscape of DCM. Resolving the various mechanisms and incorporating them into a unified concept is crucial for gaining a comprehensive understanding of DCM. This deeper understanding is not only important for diagnosis and treatment strategies with small molecules, but also for understanding the reciprocal signaling processes that occur between cardiac myocytes and their micro-environment. By unraveling these complexities, we can pave the way for improved therapeutic interventions for managing DCM.
Insights
Familial dilated cardiomyopathy (DCM) lacks new treatments. Understanding how gene variants affect sarcomere proteins and cardiac muscle tension is key to developing therapies for heart failure (HF).
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Genetic Heart Diseases
Background:
- Familial dilated cardiomyopathy (DCM) is a progressive heart muscle disease with limited therapeutic options.
- Genetic variants in sarcomeric/cytoskeletal proteins are primary triggers, often reducing myofilament tension and leading to heart failure (HF).
- Current understanding of how mutant proteins impact sarcomere molecular signaling and tension generation in DCM remains controversial.
Purpose of the Study:
- To clarify the molecular mechanisms by which mutant sarcomere proteins affect cardiac muscle signaling in DCM.
- To investigate the role of myosin head states (SRX/DRX vs. OFF/ON) in tension generation and DCM progression.
- To reconcile conflicting evidence regarding mechano-sensing and protein phosphorylation in DCM pathogenesis.
Main Methods:
- Review and discussion of current research on sarcomere protein function in DCM.
- Analysis of evidence from X-ray diffraction studies on intact cardiac muscle.
- Examination of the impact of protein phosphorylation on tension regulation.
Main Results:
- Contrasting hypotheses exist regarding the role of myosin head states (SRX/DRX) versus mechano-sensing mechanisms in regulating tension.
- Evidence suggests myosin heads transition from an OFF to an ON state via mechano-sensing during activation.
- Protein phosphorylation modulates these tension-generating mechanisms, adding complexity to DCM etiology.
Conclusions:
- Resolving the mechanisms of sarcomere dysfunction in DCM is critical for developing targeted therapies.
- A unified concept of DCM pathogenesis is needed to guide diagnosis and small molecule treatment strategies.
- Understanding myocyte-microenvironment signaling is crucial for advancing DCM therapeutic interventions.
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