Key result
Empagliflozin restores euvolemia and prevents GFR decline in nondiabetic HF rats by reducing NHE3 activity.
Why the study?
SGLT2 inhibitors reduce heart failure mortality and morbidity regardless of diabetes status, but the mechanisms underlying this benefit remain unclear.
Does empagliflozin improve renal salt and water handling and preserve GFR in nondiabetic rats with induced heart failure?
Does empagliflozin improve renal salt and water handling and preserve GFR in nondiabetic rats with induced heart failure?
Empagliflozin attenuates heart failure progression in nondiabetic rats by reducing proximal tubule NHE3 activity, restoring euvolemia, and preserving renal mass.
Should not change practice in nondiabetic HF; leaves open NHE3-mediated renal effects in humans.
Significance Statement SGLT2 inhibitors represent a class of drugs that were originally developed for improving glycemic control. Cardiovascular outcome trials designed to evaluate cardiovascular safety yielded unexpected and unprecedented evidence of the cardiorenal benefits of SGLT2 inhibitors. Many hypotheses have been proposed to explain the mechanisms underlying these effects. Our study demonstrates that SGLT2 inhibition is associated with the restoration of euvolemia in nondiabetic heart failure (HF) rats by preserving GFR and renal mass and inhibiting proximal tubule NHE3-mediated sodium reabsorption. The attenuation of kidney dysfunction may constitute an essential mechanism by which SGLT2 inhibitors attenuate HF development and progression in either the presence or absence of diabetes. Background SGLT2 inhibitors reduce the risk of heart failure (HF) mortality and morbidity, regardless of the presence or absence of diabetes, but the mechanisms underlying this benefit remain unclear. Experiments with nondiabetic HF rats tested the hypothesis that the SGLT2 inhibitor empagliflozin (EMPA) inhibits proximal tubule (PT) NHE3 activity and improves renal salt and water handling. Methods Male Wistar rats were subjected to myocardial infarction or sham operation. After 4 weeks, rats that developed HF and sham rats were treated with EMPA or untreated for an additional 4 weeks. Immunoblotting and quantitative RT-PCR evaluated SGLT2 and NHE3 expression. Stationary in vivo microperfusion measured PT NHE3 activity. Results EMPA-treated HF rats displayed lower serum B-type natriuretic peptide levels and lower right ventricle and lung weight to tibia length than untreated HF rats. Upon saline challenge, the diuretic and natriuretic responses of EMPA-treated HF rats were similar to those of sham rats and were higher than those of untreated HF rats. Additionally, EMPA treatment prevented GFR decline and renal atrophy in HF rats. PT NHE3 activity was higher in HF rats than in sham rats, whereas treatment with EMPA markedly reduced NHE3 activity. Unexpectedly, SGLT2 protein and mRNA abundance were upregulated in the PT of HF rats. Conclusions Prevention of HF progression by EMPA is associated with reduced PT NHE3 activity, restoration of euvolemia, and preservation of renal mass. Moreover, dysregulation of PT SGLT2 may be involved in the pathophysiology of nondiabetic HF.
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Borges-Júnior et al. (2021) studied Nondiabetic heart failure. Empagliflozin vs. Untreated heart failure rats and sham rats was evaluated on Proximal tubule NHE3 activity, GFR, and euvolemia. Empagliflozin treatment in nondiabetic heart failure rats reduced proximal tubule NHE3 activity, restored euvolemia, and prevented GFR decline and renal atrophy compared to untreated rats.
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