The goal of this randomized clinical trial was to evaluate the effects of empagliflozin, a sodium-glucose cotransporter-2 inhibitor (SGLT2i) on sleep and cardiac outcomes in adults with heart failure (HF) and obstructive sleep apnea syndrome (OSA). The study also examined how subsequent initiation of continuous positive airway pressure (CPAP) therapy affected sleep and cardiac outcomes, and whether response to treatment differed according to baseline obstructive sleep apnea severity. The main questions it aims to answer were: * Does empagliflozin affect sleep apnea severity and nocturnal oxygenation before CPAP initiation? * Does prior empagliflozin treatment influence the response to subsequent CPAP therapy? * Does empagliflozin affect oxidative stress markers, including total oxidative status (TOS), total antioxidant status (TAS), and oxidative stress index (OSI)? * Does CPAP therapy initiation affect cardiac outcomes in both groups? * Does response to treatment differ according to baseline obstructive sleep apnea severity, including mild, moderate, and severe disease? Researchers compared participants receiving empagliflozin in addition to background HF therapy with those continuing background HF therapy without empagliflozin to evaluate the effects of empagliflozin. Participants: * Were randomly assigned to receive empagliflozin plus background HF pharmacotherapy or background HF pharmacotherapy therapy without empagliflozin * Underwent sleep studies, transthoracic echocardiography and clinical assessments at baseline, 3 months, and 6 months. * Provided blood samples for measurement of cardiac biomarkers and oxidative stress markers. * Completed standardized questionnaires assessing sleep quality and symptoms. * Initiated CPAP therapy after 3 months and continued treatment until the end of the study.
Heart failure and obstructive sleep apnea frequently coexist and are linked through complex pathophysiological mechanisms, including intermittent hypoxemia, sympathetic activation, oxidative stress, and hemodynamic alterations. This bidirectional interaction contributes to disease progression, impaired quality of life, and adverse clinical outcomes. While CPAP remains the standard treatment for OSA, treatment response in patients with coexisting HF is variable, and additional therapeutic strategies targeting both conditions are of clinical interest. Sodium-glucose cotransporter-2 inhibitors, including empagliflozin, have demonstrated significant cardiovascular benefits in patients with HF. Their mechanisms of action, including osmotic diuresis, reduction in intravascular and interstitial fluid volume, and improvement in cardiac function, may also influence the pathophysiology of OSA, particularly by reducing nocturnal rostral fluid shift and upper airway collapsibility. However, prospective randomized data evaluating the effects of SGLT2i on sleep-disordered breathing in patients with HF and OSA remain limited. This randomized controlled clinical trial was designed to evaluate the effects of empagliflozin on sleep, cardiac, and biochemical outcomes in adults with coexisting HF and OSA, and to assess the impact of subsequent CPAP therapy. The study incorporated a sequential two-phase design to allow differentiation between the early effects of pharmacological therapy and the later effects of CPAP. In the first phase (0-3 months), participants were randomly assigned in a 1:1 ratio to receive empagliflozin in addition to background HF therapy or to continue background HF therapy without empagliflozin. This phase was designed to evaluate the isolated effect of empagliflozin on OSA severity, nocturnal oxygenation, cardiac function, and oxidative stress. In the second phase (3-6 months), CPAP therapy was initiated in all participants, while empagliflozin treatment was continued in the study group. This phase was designed to assess the effect of CPAP therapy in both groups and to explore whether prior exposure to empagliflozin influenced the response to CPAP. Assessments were performed at baseline, 3 months, and 6 months. Sleep-related outcomes included apnea-hypopnea index (AHI), mean oxygen saturation (MOS), lowest oxygen saturation (LOS), and time spent with oxygen saturation below 90% (T\<90%), obtained from type III sleep studies. Cardiac outcomes included left ventricular ejection fraction assessed by transthoracic echocardiography and N-terminal pro-B-type natriuretic peptide concentrations. Biochemical analyses included evaluation of oxidative stress markers, including TOS, TAS, and OSI. Patient-reported outcomes included validated questionnaires assessing sleep quality, daytime sleepiness, and quality of life. The study also included exploratory analyses to assess relationships between sleep-related and cardiac parameters, as well as to evaluate whether baseline OSA severity influenced response to treatment. The sequential design of the study allowed assessment of phase-specific effects and potential interaction between pharmacological therapy and CPAP. Overall, the study aimed to provide a comprehensive evaluation of the role of empagliflozin as an adjunctive therapy in patients with HF and OSA, and to clarify its potential impact on sleep-disordered breathing, cardiac function, and oxidative stress in the context of subsequent CPAP treatment.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
NONE
Enrollment
70
Empagliflozin was initiated at baseline at a dose of 10 mg once daily, administered orally, in addition to background heart failure therapy, and continued throughout the 6-month study period.
Continuous positive airway pressure therapy was initiated after 3 months in all participants using standard clinical practice. CPAP was applied nightly during sleep, with pressure settings individually titrated. The mean therapeutic pressure was approximately 15.5 ± 2.5 cm H₂O. Treatment was continued until the end of the study.
University Clinical Hospital in Białystok
Bialystok, Podlaskie Voivodeship, Poland
Change in Apnea-Hypopnea Index (AHI).
Change in AHI, measured as the number of apnea and hypopnea events per hour of sleep, assessed between baseline and follow-up visits at 3 and 6 months.
Time frame: Baseline, 3 months, and 6 months.
Change in N-terminal pro-B-type natriuretic peptide (NT-proBNP) concentrations.
Change in NT-proBNP concentrations (pg/mL) measured in serum between baseline and follow-up visits.
Time frame: Baseline, 3 months, and 6 months.
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