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Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
Calcific Aortic Valve Disease: Part 2-Morphomechanical Abnormalities, Gene Reexpression, and Gender Effects on
1Duke University School of Medicine, Durham, NC, USA. apasipou@duke.edu.
Insights
This study examines signaling pathways in aortic stenosis-induced heart enlargement, identifying therapeutic targets to prevent heart failure. Understanding these molecular mechanisms is key for developing new treatments.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Pathophysiology
Background:
- Calcific aortic valve disease (CAVD) and aortic valvular stenosis (AVS) induce pathological left ventricular hypertrophy.
- Understanding the signal transduction pathways is crucial for preventing heart failure.
Purpose of the Study:
- To survey diverse signal transduction pathways involved in AVS-induced cardiac hypertrophy.
- To identify potential therapeutic targets for intervention and prevention of heart failure.
Main Methods:
- Review of signal transduction pathways preceding cellular/molecular mechanisms of hypertrophy.
- Analysis of gene network cascades, signaling molecules (GPCRs, mechanotransducers), and myocardial stresses.
Main Results:
- Identified signaling pathways that activate transcription factors, leading to sarcomere replication.
- Highlighted the role of second messengers in transcribing hypertrophy-provoking signals.
Conclusions:
- Signaling pathways in AVS-induced hypertrophy are potential therapeutic targets.
- Further research is needed to understand adaptive/maladaptive aspects and personalize treatments.
Abstract:
In part 1, we considered cytomolecular mechanisms underlying calcific aortic valve disease (CAVD), hemodynamics, and adaptive feedbacks controlling pathological left ventricular hypertrophy provoked by ensuing aortic valvular stenosis (AVS). In part 2, we survey diverse signal transduction pathways that precede cellular/molecular mechanisms controlling hypertrophic gene expression by activation of specific transcription factors that induce sarcomere replication in-parallel. Such signaling pathways represent potential targets for therapeutic intervention and prevention of decompensation/failure. Hypertrophy provoking signals, in the form of dynamic stresses and ligand/effector molecules that bind to specific receptors to initiate the hypertrophy, are transcribed across the sarcolemma by several second messengers. They comprise intricate feedback mechanisms involving gene network cascades, specific signaling molecules encompassing G protein-coupled receptors and mechanotransducers, and myocardial stresses. Future multidisciplinary studies will characterize the adaptive/maladaptive nature of the AVS-induced hypertrophy, its gender- and individual patient-dependent peculiarities, and its response to surgical/medical interventions. They will herald more effective, precision medicine treatments.
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