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Cardiac effects of SGLT2 inhibitors: the sodium hypothesis
Edoardo Bertero1,2, Leticia Prates Roma1, Pietro Ameri2
1Clinic for Internal Medicine III, University of the Saarland, Homburg 66421, Germany.
Abstract:
The effects of intense glycaemic control on macrovascular complications in patients with type 2 diabetes are incompletely resolved, and many glucose-lowering medications negatively affect cardiovascular outcomes. Recently, the EMPA-REG OUTCOME trial revealed that empagliflozin, an inhibitor of the sodium-glucose cotransporter 2 (SGLT2), substantially reduced the risk of hospitalization for heart failure, death from cardiovascular causes, and all-cause mortality in patients with type 2 diabetes mellitus at high cardiovascular risk. Although several mechanisms may explain this benefit, plasma volume contraction and a metabolic switch favouring cardiac ketone bodies oxidation have recently been proposed as the major drivers. Recent experimental work has prompted a novel and intriguing hypothesis, according to which empagliflozin may reduce intracellular sodium (Na+) load observed in failing cardiac myocytes by inhibiting the sarcolemmal Na+/H+ exchanger. Since elevated intracellular Na+ hampers mitochondrial Ca2+ handling and thereby, deteriorates energy supply and demand matching and the mitochondrial antioxidative defence systems, empagliflozin may positively affect cardiac function by restoring mitochondrial function, and redox state in the failing heart. Here, we review the current evidence for such a third mechanistic hypothesis, which may foster heart failure and diabetes research into a new direction which harbours several potential targets for therapeutic intervention.
Insights
Empagliflozin, a sodium-glucose cotransporter 2 (SGLT2) inhibitor, reduces cardiovascular risks in type 2 diabetes patients. It may improve heart function by restoring mitochondrial health and reducing intracellular sodium in cardiac cells.
Area of Science:
- Cardiology
- Endocrinology
- Pharmacology
Background:
- Intense glycemic control's impact on macrovascular complications in type 2 diabetes remains unclear.
- Many glucose-lowering drugs adversely affect cardiovascular outcomes.
- The EMPA-REG OUTCOME trial showed empagliflozin significantly reduced cardiovascular risks in high-risk type 2 diabetes patients.
Purpose of the Study:
- To review evidence supporting a novel hypothesis on empagliflozin's cardiac benefits.
- To explore empagliflozin's potential to restore mitochondrial function in failing hearts.
- To identify new therapeutic targets for heart failure and diabetes.
Main Methods:
- Review of recent experimental work and clinical trial data.
- Analysis of proposed mechanisms for empagliflozin's cardiovascular benefits.
- Investigation of empagliflozin's effect on intracellular sodium and mitochondrial function.
Main Results:
- Empagliflozin reduced hospitalization for heart failure, cardiovascular death, and all-cause mortality.
- Proposed mechanisms include plasma volume contraction and metabolic switching to ketone bodies.
- A novel hypothesis suggests empagliflozin inhibits the Na+/H+ exchanger, reducing intracellular sodium load in failing myocytes.
Conclusions:
- Empagliflozin may improve cardiac function by restoring mitochondrial function and redox state.
- This novel mechanism involving intracellular sodium reduction offers new therapeutic avenues.
- Further research into this hypothesis could advance heart failure and diabetes treatment.
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