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Author Spotlight: Exploring the Relationship Between Lipotoxicity and HFpEF
Published on: March 29, 2024
Load-independent effects of empagliflozin contribute to improved cardiac function in experimental heart failure with
Kim A Connelly1, Yanling Zhang2, Jean-François Desjardins2
1Keenan Research Centre, Li Ka Shing Knowledge Institute, St. Michael's Hospital, 61 Queen Street East, Toronto, M5C 2T2, ON, Canada. kim.connelly@unityhealth.to.
Insights
Sodium-glucose linked cotransporter-2 (SGLT2) inhibitors improve intrinsic cardiac function beyond reducing preload and afterload. This suggests SGLT2 inhibitors offer heart failure benefits through mechanisms independent of their diuretic effects.
Area of Science:
- Cardiology
- Pharmacology
Background:
- Sodium-glucose linked cotransporter-2 (SGLT2) inhibitors are known to reduce heart failure hospitalizations and cardiovascular death.
- Their cardioprotective effects are attributed to reduced preload and afterload due to volume contraction.
- However, potential improvements in intrinsic cardiac function independent of loading conditions remain less understood.
Purpose of the Study:
- To investigate whether SGLT2 inhibitors improve intrinsic cardiac function in a preclinical model of heart failure with reduced ejection fraction (HFrEF).
- To determine if these improvements are independent of changes in preload and afterload.
Main Methods:
- Utilized a rat model of myocardial infarction (MI) to simulate HFrEF.
- Assessed cardiac function using pressure-volume (P-V) relationship analysis with conductance catheterization.
- Administered the SGLT2 inhibitor empagliflozin or vehicle post-MI.
Main Results:
- Empagliflozin treatment significantly improved load-independent measures of cardiac contractility, including preload recruitable stroke work (PRSW) and end-systolic pressure volume relationship (ESPVR).
- Systolic blood pressure was higher in empagliflozin-treated rats despite diuretic effects, indicating enhanced cardiac performance.
- No significant changes were observed in fractional shortening, myocyte hypertrophy, interstitial fibrosis, or key calcium handling proteins.
Conclusions:
- Empagliflozin therapy enhances intrinsic cardiac function in a preclinical HFrEF model, independent of loading conditions.
- These findings suggest that SGLT2 inhibitors possess cardioprotective mechanisms beyond their effects on preload and afterload.
- The study supports a direct beneficial effect of SGLT2 inhibitors on cardiac contractility in heart failure.
Background And Aims:
Sodium-glucose linked cotransporter-2 (SGLT2) inhibitors reduce the likelihood of hospitalization for heart failure and cardiovascular death in both diabetic and non-diabetic individuals with reduced ejection fraction heart failure. Because SGLT2 inhibitors lead to volume contraction with reductions in both preload and afterload, these load-dependent factors are thought to be major contributors to the cardioprotective effects of the drug class. Beyond these effects, we hypothesized that SGLT2 inhibitors may also improve intrinsic cardiac function, independent of loading conditions.
Methods:
Pressure-volume (P-V) relationship analysis was used to elucidate changes in intrinsic cardiac function, independent of alterations in loading conditions in animals with experimental myocardial infarction, a well-established model of HFrEF. Ten-week old, non-diabetic Fischer F344 rats underwent ligation of the left anterior descending (LAD) coronary artery to induce myocardial infarction (MI) of the left ventricle (LV). Following confirmation of infarct size with echocardiography 1-week post MI, animals were randomized to receive vehicle, or the SGLT2 inhibitor, empagliflozin. Cardiac function was assessed by conductance catheterization just prior to termination 6 weeks later.
Results:
The circumferential extent of MI in animals that were subsequently randomized to vehicle or empagliflozin groups was similar. Empagliflozin did not affect fractional shortening (FS) as assessed by echocardiography. In contrast, load-insensitive measures of cardiac function were substantially improved with empagliflozin. Load-independent measures of cardiac contractility, preload recruitable stroke work (PRSW) and end-systolic pressure volume relationship (ESPVR) were higher in rats that had received empagliflozin. Consistent with enhanced cardiac performance in the heart failure setting, systolic blood pressure (SBP) was higher in rats that had received empagliflozin despite its diuretic effects. A trend to improved diastolic function, as evidenced by reduction in left ventricular end-diastolic pressure (LVEDP) was also seen with empagliflozin. MI animals treated with vehicle demonstrated myocyte hypertrophy, interstitial fibrosis and evidence for changes in key calcium handling proteins (all p < 0.05) that were not affected by empagliflozin therapy.
Conclusion:
Empagliflozin therapy improves cardiac function independent of loading conditions. These findings suggest that its salutary effects are, at least in part, due to actions beyond a direct effect of reduced preload and afterload.
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