Load-Dependent Effects of Sodium Glucose Co-Transporter Inhibitors on Work in Human Hypertrophic Cardiomyopathy
Rebecca B Taichman1,2, Julia N Smolyak1, Jesse Chittams3
1Cardiovascular Institute, Perelman School of Medicine, University of Pennsylvania, Philadelphia PA.
Insights
Sodium glucose cotransporter inhibitors (SGLTi) directly reduced myocardial work in human hypertrophic cardiomyopathy (HCM) models. Ketone supplementation had distinct effects, highlighting SGLTi
Area of Science:
- Cardiovascular Research
- Translational Medicine
- Pharmacology
Background:
- Hypertrophic cardiomyopathy (HCM) lacks effective disease-modifying therapies.
- Human experimental models are needed to study direct cardiac effects of therapeutics under controlled loading conditions.
- Sodium glucose cotransporter inhibitors (SGLTi) may impact cardiac contractility, but their direct effects on human HCM myocardium are understudied.
Purpose of the Study:
- To establish human living myocardial slices (LMS) as a platform for studying load-dependent mechanics in HCM.
- To quantify the acute effects of metabolic and pharmacologic interventions, including SGLTi, on myocardial work in HCM.
Main Methods:
- Human myocardial tissue from non-failing donors and HCM patients was used to create LMS.
- LMS were mechanically tested to generate work loops under varying physiologic preloads and afterloads, fueled by glucose or glucose with ketones.
- The effects of isoproterenol, mavacamten, SGLTi (sotagliflozin, empagliflozin), and vehicle were assessed on myocardial work.
Main Results:
- Myocardial work was associated with age, hypertension, and ejection fraction.
- Ketone supplementation increased myocardial work, particularly in HCM LMS at high afterloads.
- SGLTi (sotagliflozin and empagliflozin) acutely reduced myocardial work, with sotagliflozin showing greater potency at high afterloads.
Conclusions:
- The LMS platform effectively assesses myocardial mechanics and drug effects under controlled loading conditions.
- SGLTi and ketones exert distinct and opposing effects on human myocardial contractility.
- This platform facilitates rigorous phenotyping of human myocardium and investigation of pharmacologic interventions for HCM.
Background:
Disease modifying therapies for hypertrophic cardiomyopathy (HCM) remain a prevailing unmet need. Human-based experimental platforms capable of controlled manipulation of preload and afterload can distinguish direct myocardial and systemic effects and facilitate development of targeted cardiac therapeutics. Sodium glucose cotransporter inhibitors (SGLTi) may directly affect cardiac contractility, potentially related to increased ketone availability. These effects have not been adequately studied in human HCM myocardium under defined loading conditions.
Aims:
We sought to establish human living myocardial slices (LMS) as a platform to interrogate load-dependent myocardial mechanics in HCM and to quantify the acute effects of metabolic and pharmacologic interventions-including SGLTi-on myocardial work under physiologic loading conditions.
Methods:
Human myocardial tissue was procured from non-failing donor hearts or individuals with HCM undergoing septal myectomy. Freshly prepared human LMS were mechanically tested to generate biomimetic work loops across a range of physiologic preloads and afterloads in either glucose-only fuel or glucose supplemented with ketone. Following baseline measurements, slices were loaded with drug (isoproterenol, mavacamten, sotagliflozin, or empagliflozin) or vehicle (DMSO) and work loop analysis was repeated, allowing each slice to serve as its own control. Mixed effects linear regression models incorporating random effects for heart and slice and fixed effects for clinical characteristics evaluated determinants of myocardial work and drug response across loading conditions.
Results:
A total of 120 LMS from 32 individuals (16 non-failing and 16 HCM) were analyzed. At baseline, myocardial work was positively associated with younger age, hypertension, and ejection fraction. Ketone supplementation augmented work and work-strain slope particularly in HCM LMS at high afterloads. We validated our drug testing methodology by demonstrating increased work with known positive inotrope isoproterenol, decreased work with negative inotrope mavacamtem most pronounced in HCM LMS, and a null effect of DMSO. Acute exposure to SGLTi sotagliflozin and empagliflozin directly reduced myocardial work, with increased potency of sotagliflozin at high afterloads.
Conclusions:
Our LMS platform enables assessment of myocardial mechanics across controlled loading conditions and is an ideal platform to rigorously phenotype human myocardial tissue and interrogate direct effects of pharmacologic intervention. We demonstrate that SGLTi and ketones have distinct and discordant effects on human myocardial contractility.
More Related Videos
Related Concept Videos
Heart Failure Drugs: Inotropic Agents
Heart Failure II: Pathophysiology
Cellular Adaptation II: Hypertrophy
Antihypertensive Drugs: Potassium-Sparing Diuretics
Cardiomyopathy III: Hypertrophic Cardiomyopathy
Heart Failure Drugs: Inhibitors of Renin-Angiotensin System


