Search bioRxiv⌕ Search

Biology subjects

Redd, M. A.

Publications and source records attributed to Redd, M. A..

3 recordsLinked to original sources

Cardiac Myosin Activation Enhances Contractility While Preserving Myocardial Energetics Compared With β-Adrenergic Stimulation

Impaired contractility and reduced myocardial energetic reserve underlie heart failure with reduced ejection fraction. Catecholaminergic inotropes such as dobutamine are used to augment cardiac output. However, dobutamine increases Ca{superscript 2} cycling, raising ATP demand and worsening energetic stress. The myotrope CK-138 increases contractility by directly activating myosin, sparing the added energetic cost of Ca{superscript 2} handling. This study compares CK-138 and dobutamine with respect to the relationship between contractile performance and myocardial energetic state, including high-energy phosphate balance, energetic efficiency, and substrate-specific metabolic fluxes. Isolated rat hearts were perfused with escalating concentrations of CK-138 or dobutamine. Contractility was assessed by measuring left ventricular pressure and rate-pressure product. Myocardial energetics were analyzed using 31P-NMR, and metabolic fluxes by 13C NMR and mass spectrometry. Unlike dobutamine, CK-138 increased LV contractility without increasing heart rate or LV end-diastolic pressure. CK-138 preserved ATP and phosphocreatine levels, maintaining a stable phosphocreatine-to-ATP ratio and free energy of ATP hydrolysis, whereas dobutamine progressively depleted both. At comparable workload, dobutamine exhibited higher glycolytic flux and lactate production, indicating greater reliance on glycolysis relative to mitochondrial oxidative metabolism, whereas CK-138 exhibited a 13% higher rate of ATP synthesis and [~]50% lower anaplerotic flux, consistent with preserved mitochondrial efficiency. In conclusion, CK-138 enhances cardiac contractility while preserving myocardial energetic state and substrate utilization. Unlike dobutamine, which depletes ATP reserves and shifts metabolism toward glycolysis, CK-138 maintains ATP homeostasis and supports oxidative metabolism. These findings support cardiac myosin activators, including CK-138 and omecamtiv mecarbil, as a mechanistically distinct class of energy-efficient inotropes.

physiology↗

Ulacamten: A Novel, RLC-Targeting Cardiac Myosin Inhibitor for Potential Treatment of Cardiac Hypercontractility, Including HFpEF

BackgroundCardiac myosin inhibitors (CMIs) demonstrate advantages over other guideline-directed therapy for patients with obstructive hypertrophic cardiomyopathy (oHCM). By reducing hypercontractility, CMIs abrogate excessive systolic function and improve diastolic function; diminish hypertrophy of the left ventricle (LV); and improve exercise capacity, functional class, and symptoms. Whether CMIs are therapeutic in heart failure with preserved ejection fraction (HFpEF) is of interest because a significant subset of these patients demonstrate supranormal ejection fractions and abnormal LV structure, characteristics in common with HCM, where CMIs have proved effective. ObjectivesOur goal was to characterize the mechanism of myosin inhibition for ulacamten and determine its efficacy in a rodent model of HFpEF. MethodsUlacamten was characterized using biophysical and biochemical approaches, cardiomyocytes from humans and the ZSF1 obese rat model of HFpEF, hypercontractile human-engineered heart tissues, and echocardiography in the ZSF1 rat model. ResultsUnlike the other CMIs, aficamten and mavacamten, ulacamten binds outside the S1 domain of myosin and requires the regulatory light chain domain to bind and inhibit the activity of 2-headed myosin. Ulacamten only partially inhibits the myosin ATPase activity in both myofibrillar and protein systems, but inhibition of contractility was nearly complete in cardiomyocytes. Improvement in relaxation was demonstrated in hypercontractile-engineered heart tissues, and chronic treatment of ZSF1 obese rats showed benefits in both cardiac structure and function. ConclusionsUlacamten inhibits myosin in a manner distinct from aficamten and mavacamten, potentially broadening the mechanistic properties of CMIs available for treatment of hypercontractile cardiac dysfunction. CONDENSED ABSTRACTCardiac myosin inhibitors (CMIs) abrogate excessive systolic function and improve diastolic function, diminish cardiac hypertrophy, and improve exercise capacity in humans with obstructive hypertrophic cardiomyopathy (oHCM). Supranormal ejection fraction underlies heart failure with preserved ejection fraction (HFpEF) in some patients. We describe a new CMI, ulacamten, with binding and inhibitory properties distinct from two other FDA-approved CMIs, aficamten and mavacamten. Specifically, ulacamten requires 2-headed myosin to inhibit activity, whereas aficamten and mavacamten inhibit single-headed myosin. Ulacamten inhibits contractility in primary myocytes isolated from control human and hypercontractile ZSF1 obese rat hearts, as well as engineered heart tissues created with induced pluripotent stem cell cardiomyocytes bearing an HCM mutation. Chronic treatment of ZSF1 obese rats as a preclinical model of HFpEF improves diastolic function and reduces hypertrophy and fibrosis, broadening the potential mechanistic landscape of CMIs. Visual abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=96 SRC="FIGDIR/small/701387v2_ufig1.gif" ALT="Figure 1"> View larger version (38K): org.highwire.dtl.DTLVardef@11f9cecorg.highwire.dtl.DTLVardef@776847org.highwire.dtl.DTLVardef@15f19ddorg.highwire.dtl.DTLVardef@9b20c6_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Glycaemic variability underlies myocyte dysfunction and myocardial injury risk in diabetes

Heart disease is the leading cause of morbidity and mortality in individuals with diabetes, due largely to risks associated with ischaemic injuries such as myocardial infarction (MI). We use human population genetic data to demonstrate that current biomarkers of hyperglycaemia do not account for risk of post-MI mortality in diabetes patients. This study therefore systematically evaluates glycaemic stress underpinning cardiovascular risk in diabetes. Using in vivo and in vitro models, we demonstrate that glycaemic variability rather than hyperglycaemia alone is a dominant risk factor for heart muscle dysfunction and myocardial injury sensitivity in diabetes. These findings provide new preclinical models for mechanistic and drug discovery studies and inform strategies for managing cardiovascular outcomes in patients with diabetes.

cell biology↗