Key result
Acute cholesterol depletion with methyl-β-cyclodextrin increased cardiomyocyte contractility by 30% and increased diastolic and systolic intracellular calcium.
Why the study?
Does acute cholesterol depletion with methyl-β-cyclodextrin alter subcellular signaling and contractility in isolated adult rat ventricular myocytes?
Does acute cholesterol depletion with methyl-β-cyclodextrin alter subcellular signaling and contractility in isolated adult rat ventricular myocytes?
Effect estimate: 30% increase
p-value: p=<0.05
Acute reduction of membrane cholesterol in cardiomyocytes alters subcellular MAPK signaling and increases intracellular calcium and contractility, highlighting the importance of cholesterol homeostasis in excitation-contraction coupling.
Acute cholesterol depletion may alter rat myocyte calcium handling; leaves open any role in human cardiac disease or therapy.
UNLABELLED: Membrane cholesterol levels play an important factor in regulating cell function. Sarcolemmal cholesterol is concentrated in lipid rafts and caveolae, which are flask-shaped invaginations of the plasma membrane. The scaffolding protein caveolin permits the enrichment of cholesterol in caveolae, and caveolin interactions with numerous proteins regulate their function. The purpose of this study was to determine whether acute reductions in cardiomyocyte cholesterol levels alter subcellular protein kinase activation, intracellular Ca2+ and contractility. METHODS: Ventricular myocytes, isolated from adult Sprague Dawley rats, were treated with the cholesterol reducing agent methyl-β-cyclodextrin (MβCD, 5 mM, 1 hr, room temperature). Total cellular cholesterol levels, caveolin-3 localization, subcellular, ERK and p38 mitogen activated protein kinase (MAPK) signaling, contractility, and [Ca2+]i were assessed. RESULTS: Treatment with MβCD reduced cholesterol levels by ~45 and shifted caveolin-3 from cytoskeleton and triton-insoluble fractions to the triton-soluble fraction, and increased ERK isoform phosphorylation in cytoskeletal, cytosolic, triton-soluble and triton-insoluble membrane fractions without altering their subcellular distributions. In contrast the primary effect of MβCD was on p38 subcellular distribution of p38α with little effect on p38 phosphorylation. Cholesterol depletion increased cardiomyocyte twitch amplitude and the rates of shortening and relaxation in conjunction with increased diastolic and systolic [Ca2+]i. CONCLUSIONS: These results indicate that acute reductions in membrane cholesterol levels differentially modulate basal cardiomyocyte subcellular MAPK signaling, as well as increasing [Ca2+]i and contractility.
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Haque et al. (2016) studied Normal cardiomyocytes. Methyl-β-cyclodextrin (MβCD) vs. Untreated control was evaluated on Cardiomyocyte contractility (cell shortening) (30% increase, p=<0.05). Acute cholesterol depletion with methyl-β-cyclodextrin increased cardiomyocyte contractility by 30% and increased diastolic and systolic intracellular calcium.
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