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Published on: November 2, 2020
Stress activated signalling impaired protein quality control pathways in human hypertrophic cardiomyopathy
Roua Hassoun1, Heidi Budde1, Saltanat Zhazykbayeva1
1Institut für Forschung und Lehre (IFL), Molecular and Experimental Cardiology, Ruhr University Bochum, Bochum, Germany; Department of Cardiology, St. Josef-Hospital and Bergmannsheil, Ruhr University Bochum, Bochum, Germany.
Insights
Hypertrophic cardiomyopathy involves increased titin stiffness, oxidative stress, and inflammation. Reducing oxidative stress may treat cardiac dysfunction in heart failure and hypertrophic cardiomyopathy.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Cellular Physiology
Background:
- Hypertrophic cardiomyopathy (HCM) is a complex myocardial disorder lacking effective disease-modifying therapies.
- Key pathological hallmarks include autophagy, oxidative stress, inflammation, stress signaling, and apoptosis, contributing to cardiac dysfunction.
Purpose of the Study:
- To investigate the roles of autophagy, oxidative stress, inflammation, stress signaling pathways, and apoptosis in HCM.
- To explore their contribution to cardiac dysfunction and identify potential therapeutic targets.
Main Methods:
- Analysis of demembranated cardiomyocytes from HCM patients.
- Assessment of titin-based stiffness (Fpassive), S-glutathionylation, ubiquitination, and glutathione redox balance (GSH/GSSG).
- Measurement of heat shock proteins (HSPs), endothelial nitric oxide synthase (eNOS), nitric oxide (NO) bioavailability, soluble guanylyl cyclase (sGC) activity, and inflammatory markers.
Main Results:
- HCM cardiomyocytes exhibit increased titin-based stiffness, corrected by antioxidants.
- Titin was S-glutathionylated and ubiquitinated, linked to altered GSH/GSSG balance.
- Upregulated and S-glutathionylated HSPs reduced cardiomyocyte stiffness in vitro.
- Elevated phosphorylated eNOS, reduced NO bioavailability, decreased sGC activity, and increased 3-nitrotyrosine were observed.
- Modified signaling pathways (MAPK, AKT, GSK-3ß, mTOR, FOXO, JNK, ERK1/2) and elevated apoptotic factors (cathepsin, procaspase 3, procaspase 9, caspase 12) were found.
- Increased proinflammatory cytokines (IL-6, IL-18, ICAM1, VCAM1, TLR2, TLR4) and oxidative stress markers (3-nitrotyrosine, H2O2) were associated with apoptosis.
Conclusions:
- Stress signaling and impaired purine salvage pathway (PQS) contribute to the HCM phenotype.
- Reducing oxidative stress presents a viable therapeutic strategy for attenuating cardiac dysfunction in heart failure and potentially HCM, preventing disease progression.
Abstract:
Hypertrophic cardiomyopathy (HCM) is a complex myocardial disorder with no well-established disease-modifying therapy so far. Our study aimed to investigate how autophagy, oxidative stress, inflammation, stress signalling pathways, and apoptosis are hallmark of HCM and their contribution to the cardiac dysfunction. Demembranated cardiomyocytes from patients with HCM display increased titin-based stiffness (Fpassive), which was corrected upon antioxidant treatment. Titin as a main determinant of Fpassive was S-glutathionylated and highly ubiquitinated in HCM patients. This was associated with a shift in the balance of reduced and oxidized forms of glutathione (GSH and GSSG, respectively). Both heat shock proteins (HSP27 and α-ß crystalline) were upregulated and S-glutathionylated in HCM. Administration of HSPs in vitro significantly reduced HCM cardiomyocyte stiffness. High levels of the phosphorylated monomeric superoxide anion-generating endothelial nitric oxide synthase (eNOS), decreased nitric oxide (NO) bioavailability, decreased soluble guanylyl cyclase (sGC) activity, and high levels of 3-nitrotyrosine were observed in HCM. Many regulators of signal transduction pathways that are involved in autophagy, apoptosis, cardiac contractility, and growth including the mitogen-activated protein kinase (MAPK), protein kinase B (AKT), glycogen synthase kinase 3ß (GSK-3ß), mammalian target of rapamycin (mTOR), forkhead box O transcription factor (FOXO), c-Jun N-terminal protein kinase (JNK), and extracellular-signal-regulated kinase (ERK1/2) were modified in HCM. The apoptotic factors cathepsin, procaspase 3, procaspase 9 and caspase 12, but not caspase 9, were elevated in HCM hearts and associated with increased proinflammatory cytokines (Interleukin 6 (IL-6), interleukin 18 (IL-18), intercellular cell adhesion molecule-1 (ICAM1), vascular cell adhesion molecule-1 (VCAM1), the Toll-like receptors 2 (TLR2) and the Toll-like receptors 4 (TLR4)) and oxidative stress (3-nitrotyrosine and hydrogen peroxide (H2O2)). Here we reveal stress signalling and impaired PQS as potential mechanisms underlying the HCM phenotype. Our data suggest that reducing oxidative stress can be a viable therapeutic approach to attenuating the severity of cardiac dysfunction in heart failure and potentially in HCM and prevent its progression.
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