Methods of treating heart failure with reduced ejection fraction with dapagliflozin
Administering SGLT2 inhibitors like dapagliflozin addresses the limitations of current HFrEF treatments by reducing heart failure events, cardiovascular risks, and diabetes onset, improving patient outcomes and survival.
Patent Information
- Application Number
- JP2020524303
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-05
- Filing Date
- 2020-03-09
- Publication Date
- 2025-10-20
- Estimated Expiration
- 2040-03-09
AI Technical Summary
Current treatments for heart failure with reduced ejection fraction (HFrEF) have low survival rates and high morbidity and mortality, necessitating alternative therapies to improve patient outcomes by reducing cardiovascular events and worsening symptoms.
Administering an effective amount of a sodium-glucose cotransporter 2 (SGLT2) inhibitor, such as dapagliflozin, to patients with or without type 2 diabetes (T2D) to treat HFrEF, prevent cardiovascular events, and delay the onset of diabetes.
The methods reduce the incidence of heart failure events, fatal cardiovascular events, and hospitalizations, improve symptoms, and lower the risk of diabetes and renal complications, while minimizing adverse events.
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Abstract
Description
[Background technology]
[0001] Heart failure (HF) is a life-threatening medical condition in which the heart is unable to pump enough blood to sustain the body's organs. HF affects 64 million people worldwide, half of whom have a reduced ejection fraction (HFrEF), and the prevalence and incidence of HF continue to increase worldwide (Non-Patent Document 1). HF is a chronic and degenerative disease, and half of patients will die within five years of diagnosis (Non-Patent Document 2). HF is the leading cause of hospitalization in people over 65 years of age, resulting in a substantial clinical and economic burden (Non-Patent Document 3).
[0002] The existing standard treatment paradigm for HF involves the coadministration of one or more of the following classes of medications: angiotensin-converting enzyme (ACE) inhibitors, angiotensin II receptor blockers (ARBs), beta-blockers, mineralocorticoid receptor agents such as mineralocorticoid receptor antagonists (MRAs), angiotensin receptor-neprilysin inhibitors (ARNIs), digoxin, diuretics, cardiac pump therapy, selective sinus node depressants, vasodilators, and calcium channel blockers (unless the patient suffers from systolic heart failure). Even with the best available treatments, the 5-year survival rate for HF is lower than that of most cancers (Non-Patent Document 4). Morbidity and mortality in HF patients remain high, and patient outcomes need improvement. Alternative methods of treating HF patients, particularly HFrEF patients, are needed to improve patient outcomes by reducing cardiovascular mortality, reducing heart failure events and worsening HF symptoms, and slowing disease progression.
[0003] Sodium-glucose cotransporter 2 (SGLT2) inhibitors are a class of hypoglycemic drugs that improve glycemic control independently of insulin secretion with a low risk of hypoglycemia, resulting in reductions in blood pressure, body weight, and uric acid levels (Non-Patent Document 5). SGLT2 inhibitors reduce renal glucose reabsorption, thereby increasing urinary glucose excretion (ibid.). In addition, SGLT2 inhibitors reduce vascular stiffness and improve endothelial function.
[0004] Dapagliflozin is a potent, highly selective, and orally effective inhibitor of human renal SGLT2, which effectively reduces HbAlc with a low risk of inducing hypoglycemia. Dapagliflozin therapy has been shown to reduce body weight, systolic blood pressure, blood uric acid, albuminuria, and improve arterial compliance (all conditions associated with increased CV risk) (Non-Patent Document 6). The chemical structure of dapagliflozin is: [ka] is. [Prior art documents] [Non-patent literature]
[0005] [Non-Patent Document 1] Cannie DEet al.,European Cardiology Review 14(2):89-96(2019) [Non-patent document 2] Mamas, MA et al., European Journal of Heart Failure 19:1095-1104(2017) [Non-patent document 3] Azad, N. et al., Journal of Geriatric Cardiology 11:329-337(2014) [Non-patent document 4] Braunwald, E. et al., Lancet 385:812-824(2015) [Non-patent document 5] Inzucchi et al., Diabetes & Vascular Dis Res.12(2):90-100(2015) [Non-patent document 6] Shigiyama et al., Cardiovasc Diabetol 16:84(2017) Summary of the Invention [Means for solving the problem]
[0006] Accordingly, the present disclosure relates to methods of treating patients with HFrEF, including those with or without type 2 diabetes (T2D), with an SGLT2 inhibitor, such as dapagliflozin.
[0007] The present disclosure relates to methods of treating heart failure with reduced ejection fraction (HFrEF) in a patient, the method comprising administering to the patient an effective amount of a sodium-glucose cotransporter 2 (SGLT2) inhibitor. For example, in some embodiments, the present disclosure relates to methods of treating HFrEF in patients without type 2 diabetes (T2D), the method comprising administering to the patient an effective amount of a sodium-glucose cotransporter 2 (SGLT2) inhibitor. In other embodiments, the present disclosure relates to methods of treating HFrEF in patients with T2D, the method comprising administering to the patient an effective amount of an SGLT2 inhibitor.
[0008] Also disclosed is a method for preventing or delaying a fatal cardiovascular event in patients with HFrEF with or without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor.
[0009] Also disclosed herein are methods for preventing or delaying the onset of diabetes in HFrEF patients without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor. In some embodiments, the HFrEF patients without T2D have glycated hemoglobin less than 5.7%. In some embodiments, the HFrEF patients without T2D are pre-diabetic (i.e., have glycated hemoglobin ≥ 5.7% and < 6.5%). In some embodiments, the methods disclosed herein reduce the incidence of T2D compared to placebo. In some embodiments, the methods disclosed herein reduce the incidence of T2D compared to a standard of care for HF. In some embodiments, the reduction in T2D incidence is measured by the time to first reported glycated hemoglobin measurement ≥ 6.5%. In some embodiments, the methods disclosed herein result in a hazard ratio of less than 1 for reducing the incidence of T2D compared to placebo. In some embodiments, the methods disclosed herein result in a hazard ratio of less than 1 in reducing the incidence of T2D compared to standard HF medications.
[0010] Also disclosed are methods of treating HFrEF in patients with or without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor, wherein the patient does not experience adverse events associated with renal failure during treatment. In some embodiments, the absence of adverse events associated with renal failure includes no or minimal reduction in eGFR levels, no end-stage renal disease (ESRD) and / or no renal deaths.
[0011] Disclosed herein is a method for reducing the total number of standard heart failure (HF) medications taken by a patient with HFrEF with or without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor.
[0012] In any of the embodiments disclosed herein, the SGLT2 inhibitor is dapagliflozin, canagliflozin, empagliflozin, sotagliflozin, ipragliflozin, or ertugliflozin, or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In at least one embodiment, the SGLT2 inhibitor is dapagliflozin, or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In at least one embodiment, the dapagliflozin is in the form of an amorphous solid. In at least one embodiment, the dapagliflozin is in the form of a crystalline solid. In at least one embodiment, the dapagliflozin has the structure: [ka] It is in the form of an (S)-propylene glycol ((S)-(PG) solvate having the formula:
[0013] Further disclosed herein are methods comprising administering an effective amount of an SGLT2 inhibitor, alone or in combination with at least one other therapeutic agent, to a patient in need thereof. In some embodiments, the other therapeutic agent is administered together with the SGLT2 inhibitor in the same or different pharmaceutical compositions and at the same or different times. In some embodiments, the other therapeutic agent is an antidiabetic agent, an antiobesity agent, an antihyperlipidemic agent, an antiatherosclerotic agent, an antihypertensive agent, an antiplatelet agent, an antithrombotic agent, or an anticoagulant agent. For example, in at least one embodiment, the other therapeutic agent is an antidiabetic agent, such as a biguanide and / or a DPP4 inhibitor. An exemplary biguanide is metformin or a pharmaceutically acceptable salt thereof. Exemplary DPP4 inhibitors include saxagliptin, linagliptin, sitagliptin, and pharmaceutically acceptable salts thereof.
[0014] In the methods disclosed herein, the patient has a left ventricular ejection fraction (LVEF) of 40% or less, e.g., 35%, 30%, or 25% or less, and in at least one embodiment, at least 20%. LVEF can be determined, for example, using an echocardiogram, radionuclide angiogram, angiography, or cardiac MRI.
[0015] In some embodiments, the methods disclosed herein comprise orally administering to a patient once daily an SGLT2 inhibitor, such as dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof, at a dose of 2.5 mg, 5.0 mg, or 10 mg. In at least one embodiment, the dose is 10 mg.
[0016] In some embodiments, the methods disclosed herein result in the following outcomes: (i) prolonging the time to a first heart failure (HF) event and / or a fatal cardiovascular event; and / or (ii) reducing the worsening of heart failure symptoms; and / or (iii) reducing the incidence of heart failure events and / or fatal cardiovascular events This will result in at least one of the following:
[0017] In some embodiments, the methods disclosed herein reduce the incidence of myocardial infarction. In some embodiments, the myocardial infarction is fatal. In some embodiments, the myocardial infarction is non-fatal. In some embodiments, the patient has a history of myocardial infarction. In some embodiments, the patient has no history of myocardial infarction. In some embodiments, the methods disclosed herein reduce the incidence of myocardial infarction compared to a placebo. In some embodiments, the methods disclosed herein reduce the incidence of myocardial infarction compared to a standard of care HF treatment. In some embodiments, the reduction in the incidence of myocardial infarction is measured by the time to first fatal or non-fatal myocardial infarction. In some embodiments, the methods disclosed herein provide a hazard ratio of less than 1 for the reduction in the incidence of myocardial infarction compared to a placebo. In some embodiments, the methods disclosed herein provide a hazard ratio of less than 1 for the reduction in the incidence of myocardial infarction compared to a standard of care treatment.
[0018] In some embodiments, the methods disclosed herein reduce the risk of hospitalization for heart failure and cardiovascular mortality in patients after an acute myocardial infarction. In some embodiments, the patient has experienced an acute myocardial infarction within 7 days of initiating treatment with an SGLT2 inhibitor. In some embodiments, the patient has experienced a STEMI (ST-segment elevation myocardial infarction). In some embodiments, the patient has experienced an NSTEMI (non-ST-segment elevation myocardial infarction). In some embodiments, the SGLT2 inhibitor is dapagliflozin. In some embodiments, the patient has T2D. In some embodiments, the patient does not have T2D. In some embodiments, the patient has HFrEF. In some embodiments, the patient does not have HFrEF. In some embodiments, the methods disclosed herein reduce the risk of hospitalization for heart failure and cardiovascular mortality in patients after an acute myocardial infarction compared to placebo. In some embodiments, the methods disclosed herein reduce the risk of hospitalization for heart failure and cardiovascular mortality in patients after an acute myocardial infarction compared to standard of care medications for HF. In the methods disclosed herein, the patient receiving an SGLT2 inhibitor can be receiving one or more standard of care HF treatments prior to or during administration of the SGLT2 inhibitor. In some embodiments, the methods disclosed herein are used to evaluate the following outcomes in patients who have experienced an acute myocardial infarction within 7 days: (i) prolonging the time to a first heart failure (HF) event and / or a fatal cardiovascular event; and / or (ii) reducing the worsening of heart failure symptoms; and / or (iii) reducing the number of heart failure events and / or reducing the incidence of fatal cardiovascular events; and / or (iv) reducing hospitalizations for heart failure and cardiovascular mortality; and / or (v) reducing the risk of fatal or non-fatal myocardial infarction; and / or (vi) reducing the risk of life-threatening adverse cardiac events (a composite of cardiovascular death, non-fatal myocardial infarction, and non-fatal stroke); and / or (vii) reducing the risk of all-cause mortality This will result in at least one of the following:
[0019] In some embodiments, the methods described in the above paragraphs result in a hazard ratio of less than 1 for any one of (i)-(vii). In some embodiments, the methods disclosed herein result in a lower hazard ratio compared to patients taking standard HF treatments. In some embodiments, the methods disclosed herein result in a lower hazard ratio compared to placebo.
[0020] In some embodiments, the methods disclosed herein reduce the time to the first event of cardiovascular death or worsening of heart failure symptoms in patients with acute decompensated heart failure. In some embodiments, the patient is hospitalized for worsening heart failure symptoms or acute decompensated heart failure before initiation of SGLT2 administration. In some embodiments, the patient has a left ventricular ejection fraction (LVEF) of 40% or less, e.g., 35%, 30%, or 25% or less, and in at least one embodiment, at least 20% before initiation of SGLT2 administration. In some embodiments, the SGLT2 inhibitor is dapagliflozin. In some embodiments, the patient has T2D before initiation of SGLT2 administration. In some embodiments, the patient does not have T2D before initiation of SGLT2 administration. In some embodiments, the patient has a blood pressure of >30 ml / min / 1.73 m before initiation of SGLT2 administration. 2In some embodiments, the patient has an eGFR of 3 or less. In some embodiments, the patient has increased natriuretic peptides before initiation of SGLT2 administration. In some embodiments, the patient is hospitalized in stable condition due to worsening heart failure symptoms or acute heart failure. As used herein, "stable condition" is understood to mean no increase in IV diuretics and no use of IV vasodilators or inotropes at least 24 hours prior to initiation of SGLT2 administration, e.g., at least 48 hours, e.g., at least 72 hours, and in some embodiments, at least one week prior to initiation of SGLT2 administration. In some embodiments, the methods disclosed herein reduce the time to the first event of cardiovascular death or worsening heart failure symptoms in patients with acute decompensated heart failure compared to placebo. In some embodiments, the methods disclosed herein reduce the time to the first event of cardiovascular death or worsening heart failure symptoms in patients with acute decompensated heart failure compared to standard of care HF treatments. In some embodiments, patients administered an SGLT2 inhibitor may be receiving one or more standard of care HF treatments prior to or during administration of the SGLT2 inhibitor.
[0021] In some embodiments, the methods disclosed herein are directed to improving or reducing the following outcomes in patients with acute decompensated heart failure: (i) prolonging the time to first fatal cardiovascular event; and / or (ii) prolonging the time to hospital readmission for heart failure; and / or (iii) prolonging the time to emergency HF outpatient visit; and / or (iv) Increased survival and total days post-discharge; and / or (v) reducing the worsening of heart failure symptoms; and / or (vi) reducing the risk of all-cause mortality This will result in at least one of the following:
[0022] In some embodiments, the methods described in the above paragraphs result in a hazard ratio of less than 1 for any one of (i)-(vi). In some embodiments, the methods disclosed herein result in a lower hazard ratio compared to patients taking standard HF medications. In some embodiments, the methods disclosed herein result in a lower hazard ratio compared to placebo.
[0023] In some embodiments, the methods disclosed herein reduce the incidence of any stroke (ischemic, hemorrhagic, or of unknown cause). In some embodiments, the stroke is fatal. In some embodiments, the stroke is non-fatal. In some embodiments, the patient has a history of stroke. In some embodiments, the patient has no history of stroke. In some embodiments, the methods disclosed herein reduce the incidence of stroke compared to a placebo. In some embodiments, the methods disclosed herein reduce the incidence of stroke compared to a standard of care HF treatment. In some embodiments, the reduction in stroke incidence is measured by the time to first fatal or non-fatal stroke. In some embodiments, the methods disclosed herein provide a hazard ratio of less than 1 for the reduction in stroke incidence compared to a placebo. In some embodiments, the methods disclosed herein provide a hazard ratio of less than 1 for the reduction in stroke incidence compared to a standard of care HF treatment.
[0024] In some embodiments, administration of an SGLT2 inhibitor prolongs the time to a first heart failure (HF) event. In at least one embodiment, the HF event is a hospitalization for HF or an emergency HF outpatient visit. In at least one embodiment, a hospitalization for HF includes a hospitalization lasting at least 24 hours with a primary diagnosis of HF. In some embodiments, administration of an SGLT2 inhibitor reduces the total number of hospitalizations for HF. In at least one embodiment, the total number of hospitalizations for HF includes first and / or re-admissions.
[0025] In some embodiments, hospitalization for HF is determined by meeting the following criteria: (i) new or worsening symptoms of HF experienced by the patient; and / or (ii) Objective evidence of new or worsening symptoms of HF; and / or (iii) Initiation or intensification of specialized HF treatment This is due to one or more of the following:
[0026] In at least one embodiment, new or worsening symptoms of HF experienced by the patient include dyspnea, decreased exercise tolerance, fatigue, and / or other symptoms of worsening end-organ damage or fluid overload. In at least one embodiment, objective evidence of new or worsening symptoms of HF includes physical examination findings and / or new or worsening HF laboratory values considered attributable to HF. In at least one embodiment, physical examination findings include at least two of the following: peripheral edema, increasing abdominal distension or ascites, pulmonary rales / crackles / crepitus, increased jugular venous pressure and / or hepatojugular reflux, an S3 gallop, and / or clinically significant or rapid weight gain associated with fluid retention. In at least one embodiment, the new or worsening HF laboratory findings include at least one of the following: increased B-type natriuretic peptide (BNP) / N-terminal pro-BNP (NT-proBNP) levels consistent with heart failure decompensation; radiological evidence of pulmonary congestion; non-invasive diagnostic evidence of clinically significantly elevated left or right ventricular filling pressures or low cardiac output or invasive diagnostic evidence by right heart catheterization. In at least one embodiment, the initiation or intensification of HF specialty therapy includes at least one of the following: increasing oral diuretic therapy, intravenous administration of a diuretic or vasoactive agent, or mechanical or surgical intervention (e.g., mechanical or surgical intervention includes mechanical circulatory support or mechanical fluid removal).
[0027] In some embodiments, an emergency HF visit is an emergency room visit for a primary diagnosis of HF, but does not require hospitalization, such as an urgent walk-in visit to a doctor's office for a primary diagnosis of HF. In some embodiments where an emergency HF visit is required, the patient is experiencing HF symptoms and / or has physical examination findings and / or new or worsening laboratory findings of HF. In at least one embodiment, the patient experiences one or more symptoms of HF selected from the group consisting of dyspnea, decreased exercise tolerance, fatigue, and / or other symptoms of worsening end-organ damage or fluid overload. In some embodiments where an emergency HF visit is required, the patient undergoes initiation or intensification of specialized HF treatment. In some embodiments where an emergency HF visit is required, the patient requires intravenous therapy.
[0028] In some embodiments, administration of an SGLT2 inhibitor prolongs the time to a fatal cardiovascular event.
[0029] In the foregoing embodiments, the time to first heart failure event and / or fatal cardiovascular event may be delayed for 8 weeks to 24 months from the first administration of the SGLT2 inhibitor. In at least one embodiment, the time to first heart failure event is delayed for 8 weeks to 24 months from the first administration of the SGLT2 inhibitor. In at least one embodiment, the time to fatal cardiovascular event is delayed for 8 weeks to 24 months from the first administration of the SGLT2 inhibitor.
[0030] In some embodiments, administration of an SGLT2 inhibitor reduces worsening of HF symptoms in a treated patient. In at least one embodiment, the reduced relief of the patient's heart failure symptoms is over a period of 12 to 36 months. In at least one embodiment, the reduced worsening of heart failure symptoms is characterized by a reduced number of hospitalizations for HF in the patient. In at least one embodiment, the reduced worsening of heart failure symptoms is characterized by a reduced number of emergency HF visits in the patient. In at least one embodiment, the emergency HF visits are emergency room visits or emergency outpatient clinic visits.
[0031] In at least one embodiment, the reduced worsening of heart failure symptoms is characterized by a higher score on the Kansas City Cardiomyopathy Questionnaire Total Symptom Score (KCCQ-TSS) for the patient compared to the patient's score prior to administration of the SGLT2 inhibitor. In such an embodiment, the higher score on the KCCQ-TSS occurs within 16 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 20 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 24 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 28 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 32 weeks or 8 months of initiating SGLT2 inhibitor administration. In at least one embodiment, the higher score on the KCCQ-TSS is at least 5 points higher than the patient's score prior to administration of the SGLT2 inhibitor. In at least one embodiment, the higher score based on the KCCQ-TSS is at least 10 points higher than the pre-SGLT2i score, hi at least one embodiment, the higher score based on the KCCQ-TSS is at least 15 points higher than the pre-SGLT2i score.
[0032] In some embodiments, administration of the SGLT2 inhibitor comprises one of the following: a) reducing heart failure symptoms; b) reducing physical limitations; c) improving exercise tolerance; and / or d) Reducing the amount of time spent sitting in daily life This results in one or more of the following:
[0033] In at least one embodiment, the reduction in heart failure symptoms is characterized by a higher score on the Kansas City Cardiomyopathy Questionnaire Total Symptom Score compared to the patient's score before administration of the SGLT2 inhibitor. In such an embodiment, the higher score on the KCCQ-TSS occurs within 16 weeks (or 4 months) of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 20 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 24 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 28 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-TSS occurs within 32 weeks or 8 months of initiating SGLT2 inhibitor administration. In at least one embodiment, the higher score on the KCCQ-TSS is at least 5 points higher than the patient's score before administration of the SGLT2 inhibitor. In at least one embodiment, the higher score based on the KCCQ-TSS is at least 10 points higher than the score before administration of the SGLT2 inhibitor. In at least one embodiment, the higher score based on the KCCQ-TSS is at least 15 points higher than the score before administration of the SGLT2 inhibitor. In at least one embodiment, the KCCQ-TSS is patient-reported, such as by a patient reporting to a clinic. In at least one embodiment, the patient has T2D. In some embodiments, the patient does not have T2D.
[0034] In at least one embodiment, the reduced physical limitation is characterized by the patient's higher score on the Kansas City Cardiomyopathy Questionnaire-Physical Limitation Score (KCCQ-PLS) compared to the patient's score before administration of the SGLT2 inhibitor. In such embodiments, the higher score on the KCCQ-PLS occurs within 16 weeks (or 4 months) of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-PLS occurs within 20 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-PLS occurs within 24 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-PLS occurs within 28 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the higher score on the KCCQ-PLS occurs within 32 weeks or 8 months of initiating SGLT2 inhibitor administration. In at least one embodiment, the higher score on the KCCQ-PLS is at least 1 point higher than the patient's score before administration of the SGLT2 inhibitor. In at least one embodiment, the higher score on the KCCQ-PLS is at least 5 points higher than the score before administration of the SGLT2 inhibitor. In at least one embodiment, the higher score on the KCCQ-PLS is at least 10 points higher than the score before administration of the SGLT2 inhibitor. In at least one embodiment, the higher score on the KCCQ-PLS is at least 15 points higher than the score before administration of the SGLT2 inhibitor. In at least one embodiment, the KCCQ-PLS is patient-reported, such as patient-reported to a clinic. In at least one embodiment, the patient has T2D. In some embodiments, the patient does not have T2D.
[0035] In at least one embodiment, the improvement in exercise tolerance is characterized by a longer 6-minute walk distance (6MWD) in the patient compared to the patient's 6MWD prior to administration of the SGLT2 inhibitor. In such embodiments, the longer 6MWD distance occurs within 16 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the longer 6MWD distance occurs within 20 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the longer 6MWD distance occurs within 24 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the longer 6MWD distance occurs within 28 weeks of initiating SGLT2 inhibitor administration. In other embodiments, the longer 6MWD distance occurs within 32 weeks or 8 months of initiating SGLT2 inhibitor administration. In at least one embodiment, the improvement in 6-minute walk distance (6MWD) is measured by a distance of 30 meters or greater. In at least one embodiment, the patient has T2D. In some embodiments, the patient does not have T2D.
[0036] In at least one embodiment, the reduction in sedentary behavior is characterized by an increase in the total time the patient spends engaging in vigorous daytime physical activity compared to the time the patient spent engaging in vigorous daytime physical activity before administration of an SGLT2 inhibitor. In such an embodiment, the reduction in sedentary behavior is measured within 7 days after 16 weeks of SGLT2 inhibitor administration compared to the time the patient spent engaging in vigorous daytime physical activity before administration of an SGLT2 inhibitor. In another embodiment, the reduction in sedentary behavior is measured within 7 days after 20 weeks of SGLT2 inhibitor administration compared to the time the patient spent engaging in vigorous daytime physical activity before administration of an SGLT2 inhibitor. In another embodiment, the reduction in sedentary behavior is measured within 7 days after 24 weeks of SGLT2 inhibitor administration compared to the time the patient spent engaging in vigorous daytime physical activity before administration of an SGLT2 inhibitor. In other embodiments, the reduction in sedentary time in daily activities is measured within 7 days after 28 weeks of SGLT2 inhibitor administration compared to the time the patient spent engaged in vigorous daytime physical activity before administration of the SGLT2 inhibitor. In other embodiments, the reduction in sedentary time in daily activities is measured within 7 days after 32 weeks or 8 months of SGLT2 inhibitor administration. In such embodiments, the time spent sedentary in daily activities is measured by a wearable activity monitor. In at least one embodiment, the patient has T2D. In some embodiments, the patient does not have T2D.
[0037] In some embodiments, administration of an SGLT2 inhibitor reduces the number of HF events and / or reduces the incidence of fatal cardiovascular events. In at least one embodiment, administration of an SGLT2 inhibitor reduces the number of HF events. In at least one embodiment, the HF events are hospitalizations for HF or emergency HF outpatient visits. In at least one embodiment, administration of an SGLT2 inhibitor reduces the number of hospitalizations for HF. In at least one embodiment, administration of an SGLT2 inhibitor reduces the number of emergency HF outpatient visits. In at least one embodiment, the emergency HF outpatient visit is an emergency room visit. In at least one embodiment, the emergency HF outpatient visit requires intravenous therapy.
[0038] In some embodiments, administration of an SGLT2 inhibitor reduces the composite of hospitalization for HF or a fatal cardiovascular event.
[0039] In the methods disclosed herein, the patient receiving an SGLT2 inhibitor can be receiving one or more standard of care HF treatments prior to or during administration of the SGLT2 inhibitor. In at least one embodiment, the one or more standard of care HF treatments are selected from the group consisting of angiotensin-converting enzyme (ACE) inhibitors, angiotensin II receptor blockers (ARBs), beta-blockers, mineralocorticoid receptor drugs such as mineralocorticoid receptor antagonists (MRAs), neprilysin inhibitors, antiplatelet agents, aspirin, lipid-lowering drugs (e.g., statins, bile acid sequestrants, niacin, fibrates, omega-3 fatty acids), and diuretics such as loop diuretics.
[0040] In the methods disclosed herein, the patient receiving an SGLT2 inhibitor has a New York Heart Association (NYHA) heart failure class of II to IV. In at least one embodiment, the patient receiving an SGLT2 inhibitor has a NYHA heart failure class of II. In at least one embodiment, the patient receiving an SGLT2 inhibitor has a NYHA heart failure class of III or IV.
[0041] In the methods disclosed herein, the patient receiving an SGLT2 inhibitor can have an eGFR of ≥ 30 ml / min / 1.73 m2 before administration of the SGLT2 inhibitor. In the methods disclosed herein, the patient receiving an SGLT2 inhibitor can have an eGFR of ≥ 30 ml / min / 1.73 m2 during administration of the SGLT2 inhibitor. 2 have an eGFR of
[0042] In the methods disclosed herein, the patient administered an SGLT2 inhibitor may have a plasma N-terminal pro-B-type natriuretic peptide (NT-proBNP) level of at least 400 pg per milliliter, at least 600 pg per milliliter, or at least 900 pg per milliliter prior to administration of the SGLT2 inhibitor.
[0043] In the methods disclosed herein, the patient receiving an SGLT2 inhibitor can have been medically diagnosed with symptomatic HFrEF prior to administration of the SGLT2 inhibitor. In at least one embodiment, the patient can have been diagnosed with HFrEF at least two months prior to administration of the SGLT2 inhibitor.
[0044] In the methods disclosed herein, the patient receiving the SGLT2 inhibitor may have atrial fibrillation and / or atrial flutter before administration of the SGLT2 inhibitor. In at least one embodiment, the patient receiving the SGLT2 inhibitor does not have atrial fibrillation or atrial flutter before administration of the SGLT2 inhibitor. In at least one embodiment, the methods disclosed herein reduce the incidence of atrial fibrillation in patients with a history of atrial fibrillation or atrial flutter before administration of the SGLT2 inhibitor. In at least one embodiment, the methods disclosed herein reduce the incidence of atrial fibrillation in patients without atrial fibrillation or atrial flutter before administration of the SGLT2 inhibitor. In some embodiments, the methods disclosed herein reduce the incidence of atrial fibrillation compared to placebo. In some embodiments, the methods disclosed herein reduce the incidence of atrial fibrillation compared to a standard of care HF treatment. In some embodiments, the reduction in the incidence of atrial fibrillation is measured by the time to first fatal or non-fatal atrial fibrillation. In some embodiments, the methods disclosed herein provide a hazard ratio for reducing the incidence of atrial fibrillation compared to a placebo of less than 1. In some embodiments, the methods disclosed herein provide a hazard ratio for reducing the incidence of atrial fibrillation compared to a standard of care HF medication of less than 1.
[0045] In certain embodiments, the disclosed methods result in a decrease in HbA1c in the patient. In certain embodiments, the disclosed methods result in a decrease in systolic blood pressure in the patient. In certain embodiments, the disclosed methods result in a decrease in weight in the patient. In certain embodiments, the disclosed methods result in a decrease in NT-proBNP levels in the patient. In any of the foregoing embodiments, the decrease can occur within 8 months of initiating SGLT2 inhibitor administration. In certain embodiments, the disclosed methods result in a decrease in HbA1c in the patient over time in the patient. 2 In such embodiments, the sustained decline can be for 12 months, 18 months, 24 months or more.
[0046] In certain embodiments, the methods disclosed herein result in an improvement in NYHA HF classification.
[0047] In certain embodiments, the methods disclosed herein result in a reduction in re-hospitalizations for HF or a reduction in recurrent HF events. In at least one embodiment, recurrent HF events include hospitalizations for HF or emergency HF outpatient visits.
[0048] In certain embodiments, the methods disclosed herein result in a reduced incidence of death from non-cardiovascular causes.
[0049] Further disclosed herein is a method for reducing the rate of a primary composite endpoint of cardiovascular death, HF hospitalization, or emergency HF outpatient visit in HFrEF patients treated with an SGLT2 inhibitor and a standard of care HF therapy, where the rate is reduced relative to patients treated with the standard of care HF therapy alone. Also disclosed herein is a method for reducing the rate of a secondary composite endpoint of cardiovascular death or HF hospitalization in HFrEF patients treated with an SGLT2 inhibitor and a standard of care HF therapy, where the rate is reduced relative to patients treated with the standard of care HF therapy alone. In any of the foregoing embodiments, the SGLT2 inhibitor is, for example, dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In at least one embodiment, the SGLT2 inhibitor is dapagliflozin administered orally at 10 mg once daily to a patient.
[0050] In some embodiments, the methods disclosed herein result in the following outcomes: (i) prolonging the time to a first heart failure (HF) event and / or a fatal cardiovascular event; and / or (ii) reducing the worsening of heart failure symptoms; and / or (iii) reducing the number of heart failure events and / or the incidence of fatal cardiovascular events This will result in at least one of the following:
[0051] Also provided herein are methods for reducing the risk of hyperkalemia in a patient with HF, comprising administering to the patient an effective amount of an SGLT2 inhibitor. In some embodiments, methods disclosed herein reduce the risk of hyperkalemia in a patient with HF, comprising administering to the patient a pharmaceutical composition comprising an effective amount of an SGLT2 inhibitor. In some embodiments, SGLT2 inhibitors for use in reducing the risk of hyperkalemia in a patient with HF are disclosed.
[0052] In some embodiments, the disclosure relates to a method for reducing the risk of hyperkalemia associated with MRA use in a patient with HF, the method comprising administering to the patient an effective amount of an SGLT2 inhibitor. In some embodiments, the disclosure relates to a method for reducing the risk of hyperkalemia associated with MRA use in a patient with HF, the method comprising administering to the patient a pharmaceutical composition comprising an effective amount of an SGLT2 inhibitor. In some embodiments, an SGLT2 inhibitor for use in reducing the risk of hyperkalemia associated with MRA use in a patient with HF is disclosed.
[0053] In some embodiments, the disclosure relates to a method of treating HF in a patient, comprising administering to the patient an effective amount of an MRA and an effective amount of an SGLT2 inhibitor. In some embodiments, the disclosure relates to a method of treating HF in a patient, comprising administering to the patient a pharmaceutical composition comprising an effective amount of an MRA and an effective amount of an SGLT2 inhibitor. In some embodiments, the disclosure discloses a combination of an SGLT2 inhibitor and an MRA for use in reducing the risk of hyperkalemia in HF patients. In some embodiments, the disclosure discloses an SGLT2 inhibitor for use in treating HF patients, wherein the treatment comprises separate, sequential or simultaneous administration of an MRA and an SGLT2 inhibitor to the patient.
[0054] In some embodiments, the SGLT2 inhibitor is dapagliflozin. In some embodiments, the MRA is selected from steroid mineralocorticoid receptor antagonists (MRAs), such as spironolactone (e.g., commercially available as Aldactone®, Aldactazide®) and eplerenone (e.g., commercially available as Inspra®). In some embodiments, the MRA is selected from non-steroidal MRAs, such as finerenone, esaxerenone, KBP-5074, and aparalenone.
[0055] Also disclosed herein is AZD9977, 2-{(3S)-7-fluoro-4-[(3-oxo-3,4-dihydro-2H-1,4-benzoxazin-6-yl)carbonyl]-3,4-dihydro-2H-1,4-benzoxazin-3-yl}-N-methylacetamide, disclosed in WO 2016 / 001631, which has the following structure: [ka]
[0056] In some embodiments, a method of treating HF is disclosed, comprising administering to a patient in need thereof an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0057] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in treating HF in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0058] In some embodiments, an SGLT2 inhibitor is disclosed for use in treating HF in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0059] In some embodiments, a method of reducing the risk of hyperkalemia in a patient with HF is disclosed, comprising administering to a patient in need thereof an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0060] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for reducing the risk of hyperkalemia in a patient with HF, wherein said treatment comprises separate, sequential or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0061] In some embodiments, an SGLT2 inhibitor is disclosed for reducing the risk of hyperkalemia in HF patients, wherein said treatment comprises separate, sequential, or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0062] In some embodiments, a method of treating HFrEF is disclosed, comprising administering to a patient in need thereof an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0063] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in treating HFrEF in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0064] In some embodiments, an SGLT2 inhibitor is disclosed for use in treating HFrEF in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0065] In some embodiments, a method of treating HFpEF is disclosed, comprising administering to a patient in need thereof an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0066] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in treating HFpEF in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0067] In some embodiments, an SGLT2 inhibitor is disclosed for use in treating HFpEF in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0068] In some embodiments, a method of reducing the risk of cardiovascular mortality and hospitalization for heart failure is disclosed, comprising administering to a patient in need thereof an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0069] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in reducing the risk of cardiovascular mortality and hospitalization for heart failure in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0070] In some embodiments, an SGLT2 inhibitor is disclosed for use in reducing the risk of cardiovascular mortality and hospitalization for heart failure in a patient, wherein said treatment comprises separate, sequential or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0071] In some embodiments, a method of reducing the risk of cardiovascular mortality and hospitalization for heart failure is disclosed, comprising administering to a patient in need thereof, having an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0072] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in reducing the risk of cardiovascular death and hospitalization for heart failure in a patient with an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, wherein said treatment comprises separate, sequential or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex or prodrug thereof.
[0073] In some embodiments, an SGLT2 inhibitor is disclosed for use in reducing the risk of cardiovascular mortality and hospitalization for heart failure in patients with an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, wherein said treatment comprises separate, sequential, or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0074] In some embodiments, a method of reducing the rate of a composite endpoint of cardiovascular death, hospitalization for heart failure, or emergency HF outpatient visit is disclosed, comprising administering to a patient in need thereof, having an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0075] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in reducing the rate of a composite endpoint of cardiovascular death, hospitalization for HF, or emergency HF outpatient clinic visit in patients with an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, wherein said treatment comprises separate, sequential, or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0076] In some embodiments, an SGLT2 inhibitor is disclosed for use in reducing the rate of a composite endpoint of cardiovascular death, hospitalization for heart failure, or emergency HF outpatient visit in patients with an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, wherein said treatment comprises separate, sequential, or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof.
[0077] In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In some embodiments, a method for reducing the rate of any one of all-cause mortality, myocardial infarction, or stroke is disclosed, comprising administering to a patient in need thereof and having an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2 an effective amount of AZD9977 or a pharmaceutically acceptable salt thereof; and an effective amount of an SGLT2 inhibitor. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0078] In some embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is disclosed for use in reducing the rate of any one of all-cause mortality, myocardial infarction, or stroke in a patient with an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, wherein said treatment comprises separate, sequential, or simultaneous administration of AZD9977 and an SGLT2 inhibitor to said patient. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0079] In some embodiments, an SGLT2 inhibitor is disclosed for use in reducing the rate of any one of all-cause mortality, myocardial infarction, or stroke in patients with an LVEF of 55% or less and an eGFR of about 15-45 ml / min / 1.73 m2, wherein said treatment comprises separate, sequential, or simultaneous administration of an SGLT2 inhibitor and AZD9977 or a pharmaceutically acceptable salt thereof. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0080] In any of the foregoing embodiments, the SGLT2 inhibitor can be, for example, dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In at least one embodiment, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof administered orally at 10 mg once daily. In any of the foregoing embodiments, AZD9977 or a pharmaceutically acceptable salt thereof is administered orally to the patient in an amount of 100 mg to 150 mg once daily.
[0081] In any of the foregoing embodiments, the patient has a left ventricular ejection fraction (LVEF) of 40% or less, e.g., 35%, 30%, or 25% or less, and in at least one embodiment, at least 20%. In some embodiments, the patient has a left ventricular ejection fraction (LVEF) of 40% or less, e.g., 35%, 30%, or 25% or less, and in at least one embodiment, at least 20%. In some embodiments, the patient has an LVEF of 40% or more, e.g., 45%, 50%, or 55% or more, and in at least one embodiment, at least 55%. In some embodiments, the patient has an eGFR of 45 ml / min / 1.73 m2 or less, e.g., 30 ml / min / 1.73 m2, 25 ml / min / 1.73 m2, 20 ml / min / 1.73 m2, or 15 ml / min / 1.73 m2 or less. In some embodiments, the patient has T2D. In some embodiments, the patient does not have T2D. In some embodiments, hyperkalemia is understood to mean potassium levels above 5.5 mmol / L. In some embodiments, hyperkalemia can be mild (serum potassium levels above 5.5 mmol / L) or moderate / severe (serum potassium levels above 6.0 mmol / L). [Brief explanation of the drawings]
[0082] [Figure 1]1 is a flow chart depicting patient screening, randomization, and follow-up in the Dapagliflozin and Prevention of Adverse Events in Heart Failure (DAPA-HF) multicenter Phase 3 clinical trial, as described in Example 1. All randomized patients were in the intention-to-treat (ITT) population. [Figures 2A-2D] Graphs depicting cardiovascular endpoints from the DAPA-HF Phase 3 clinical trial (see Example 1). Figure 2A depicts the primary endpoint of the trial: a composite of death from cardiovascular causes, hospitalization for heart failure, or emergency heart failure outpatient visits requiring intravenous therapy. The cumulative incidence of the primary endpoint (Figure 2A), heart failure hospitalization (Figure 2B), death from cardiovascular causes (Figure 2C), and all-cause mortality (Figure 2D) was estimated using the Kaplan-Meier method, and hazard ratios and 95% confidence intervals were estimated using Cox regression models, stratified by diabetes status, prior heart failure hospitalization, and treatment with dapagliflozin or placebo as explanatory variables. Analyses were based on all randomized participants. The display is truncated when fewer than 10% of patients remain at risk. The insets in each panel show the same data with an expanded y-axis. [Figure 3] A summary of the effects of dapagliflozin on worsening heart failure and mortality from the DAPA-HF Phase 3 clinical trial is provided (see Example 1). The figure shows the primary composite endpoint, which was a composite of death from cardiovascular causes, hospitalization for heart failure, or emergency heart failure outpatient visits requiring intravenous therapy, and each of its components. The secondary endpoints, the narrower composite of death from cardiovascular causes or hospitalization for heart failure and all-cause mortality, are also shown. [Figure 4]
[0023] Figure 1 depicts the primary composite endpoint by pre-specified subgroups from the DAPA-HF Phase 3 clinical trial (see Example 1). Race was reported by the investigator. Body mass index (BMI) is weight in kilograms divided by height in meters squared. NYHA = New York Heart Association; LVEF = left ventricular ejection fraction; NT-proBNP = N-terminal pro-B-type natriuretic peptide; MRA = mineralocorticoid receptor antagonist; and eGFR = estimated glomerular filtration rate. [Figure 5] Graph depicting baseline KCCQ Total Symptom Score (TSS) divided into three tertiles (i) ≦65.6, (ii) 65.7–87.5, and (iii) >87.5 points, showing the cumulative percentage change within these tertiles over 24 months from randomization. [Figure 6] Six clinical trial endpoints for patients in the DAPA-HF trial are depicted for dapagliflozin versus placebo, including cardiovascular death, HF hospitalization, or emergency HF outpatient visit; cardiovascular death or HF hospitalization; HF hospitalization or emergency HF outpatient visit; HF hospitalization; cardiovascular death; and all-cause death. [Figure 7A-7C] 7A-7C are graphs depicting the KCCQ Total Symptom Score (TSS) (FIG. 7A); KCCQ Clinical Symptom Score (CSS) (FIG. 7B); and KCCQ Overall Summary Score (OSS) (FIG. 7C) after treatment with dapagliflozin versus placebo in the DAPA-HF trial. [Figures 8A-8F] 8A, 8C, and 8E are bar graphs comparing the KCCQ Total Symptom Score (TSS), KCCQ Clinical Symptom Score (CSS), and KCCQ Overall Summary Score (OSS) after treatment with dapagliflozin versus placebo in the DAPA-HF trial, along with corresponding odds ratios (ORs) (FIGS. 8B, 8D, and 8F). [Figures 9A-9D] Graphs depicting the primary composite endpoint (FIG. 9A) and its components—hospitalization for heart failure (FIG. 9B), cardiovascular mortality (FIG. 9C), and all-cause mortality (FIG. 9D)—in patients from the DAPA-HF trial by baseline diabetes status. [Figures 10A-10B] The effect of dapagliflozin compared to placebo on the pre-specified primary composite endpoint in patients with and without diabetes, and by baseline glycated hemoglobin levels in patients without diabetes (FIG. 10A), and the effect of dapagliflozin compared to placebo on the pre-specified primary and secondary composite endpoints, their components, and all-cause mortality by baseline diabetes status (FIG. 10B) are depicted. [Figures 11A-11E]11A-11E are graphs depicting the effect of dapagliflozin compared to placebo on clinical laboratory measures, body weight, and systolic blood pressure by baseline diabetes status (i.e., diabetes or no diabetes). Changes from baseline are shown for % glycated hemoglobin (HbAlc) (FIG. 11A); body weight (FIG. 11B); systolic blood pressure (FIG. 11C); hematocrit (FIG. 11D); and creatinine (FIG. 11E). Least-squares mean changes are shown with 95% confidence intervals (CI). These changes are adjusted for baseline values. *History of diabetes (n=1983) and baseline glycated hemoglobin ≥ 6.5% (n=156). [Figures 12A-12D] Graphs depicting baseline HbAlc endpoints, including the primary composite endpoint (FIG. 12A); hospitalization or emergency department visit for heart failure (FIG. 12B); death from cardiovascular causes (FIG. 12C); and all-cause mortality (FIG. 12D). [Figure 13] Depict responder analyses showing consistent symptom benefit (e.g., ≥5 points, ≥10 points, ≥15 points) for patients receiving dapagliflozin versus placebo, regardless of threshold KCCQ-TSS score. [Figure 14] A renal composite endpoint by diabetes status (including 82 dapagliflozin and 74 placebo patients with previously undiagnosed diabetes; i.e., HbAlc ≥ 6.5% (≥ 48 mmol / mol) on two occasions) consisting of a sustained decline in eGFR of ≥ 50%, end-stage renal disease (defined as a sustained eGFR < 15 mL / min / 1.73 m2), or long-term dialysis or kidney transplantation will be described. [Figure 15] Figure 1 shows the sustained eGFR decline in ml / min / 1.73m2 over time in dapagliflozin patients compared to placebo patients. [Figure 16] Figure 1 shows eGFR per ml / min / 1.73 m2 per year by baseline diabetes status (including 82 dapagliflozin and 74 placebo patients with previously undiagnosed diabetes; i.e., HbAlc ≥ 6.5% (≥ 48 mmol / mol)). [Figure 17]Represents the investigator-reported incidence of new-onset T2D (HbAlc ≥ 6.5%) or previously undiagnosed diabetes measured at two consecutive study visits after randomization; i.e., compared with placebo patients with HbAlc ≥ 6.5%. [Figures 18A-18B] Figure 18A depicts the cumulative incidence of moderate hyperkalemia (>5.5 mmol / L) (Figure 18A) and severe hyperkalemia (>6.0 mmol / L) (Figure 18B) in patients treated with mineralocorticoid receptor antagonists in the placebo group (non-dashed line) and the dapagliflozin group (dashed line). DETAILED DESCRIPTION OF THE INVENTION
[0083] This disclosure relates to methods of treating patients with heart failure with reduced ejection fraction (HFrEF), including patients with or without type 2 diabetes (T2D), with an SGLT2 inhibitor, such as dapagliflozin. This disclosure also relates to treating HFrEF patients with an SGLT2 inhibitor, such as dapagliflozin, by prolonging the time to first (or recurrent) HF event, reducing HF symptoms, reducing worsening HF symptoms, and / or reducing the incidence of death from cardiovascular (CV) events. This disclosure further relates to methods of reducing the rate of a primary composite endpoint of CV death, HF hospitalization, or emergency HF outpatient visit, or a secondary composite endpoint of CV death and HF hospitalization, in HFrEF patients treated with an SGLT2 inhibitor and a standard of care HF medication, compared to patients treated with the standard of care HF medication alone.
[0084] In some embodiments, the SGLT2 inhibitor, e.g., dapagliflozin, is administered simultaneously or at different times with a standard of care HF treatment (e.g., a beta-blocker) in the same or separate compositions.
[0085] In some embodiments, the SGLT2 inhibitor, e.g., dapagliflozin, is administered together with at least one other therapeutic agent (e.g., an antidiabetic agent) in the same or separate compositions, either simultaneously or at different times.
[0086] I. Definition The terms "comprise," "have," "include," and "contain" should be construed as open-ended terms (i.e., meaning "including, but not limited to") unless otherwise noted.
[0087] The term "and / or" as used in phrases such as "A and / or B" is intended to include the following embodiments: "A and B", "A or B" and "B".
[0088] Similarly, the term "and / or" as used in phrases such as "A, B and / or C" is intended to include each of the following embodiments: A, B and C; A, B or C; A or C; A or B; B or C; A and C; A and B; B and C; A (only); B (only); and C (only). Thus, as a practical example, when referring to one or more emergency HF events (e.g., HF hospitalization and / or ER visit) and / or death from cardiovascular causes, it is intended to encompass the composite item of all specified events together, any combination of composite items of some of the events together, or each event alone.
[0089] As used herein, the term "prodrug" refers to esters and carbonates that can be converted into an SGLT2 inhibitor, for example, under physiological conditions or by solvolysis. Thus, the term prodrug includes pharmaceutically acceptable metabolic precursors of an SGLT2 inhibitor. The term prodrug also includes covalently bonded carriers that release an SGLT2 inhibitor in vivo when such a prodrug is administered to a patient. Non-limiting examples of prodrugs include esters and carbonates formed by reacting one or more hydroxyls of an SGLT2 inhibitor with an alkyl-, alkoxy-, or aryl-substituted acylating agent using procedures known in the art to generate acetates, pivalates, methyl carbonates, benzoates, and the like.
[0090] Various forms of prodrugs are known in the art. For examples of such prodrug derivatives, see: (1) Design of Prodrugs, edited by H. Bundgaard, (Elsevier, 1985) and Methods in Enzymology, Vol. 42, pp. 309-396, edited by K. Widder et al. (Academic Press, 1985); (2) A Textbook of Drug Design and Development, edited by Krogsgaard-Larsen and H. Bundgaard, Chapter 5 "Design and Application of Prodrugs," by H. Bundgaard, pp. 113-191 (1991); (3) Bundgaard, H., Advanced Drug Delivery Reviews 8:1-38 (1992); (4) Bundgaard, H. et al., Journal of Pharmaceutical Sciences 77:285 (1988); and (5) Kakeya, N. et al., Chem Pharm Bull 32:692(1984).
[0091] As used herein, the terms "treatment," "treating," and the like refer to a procedure (e.g., administration of a pharmaceutical agent to a subject) that cures, slows, alleviates symptoms, and / or halts the progression of a diagnosed pathological condition or disorder, such as HFrEF. As used herein, a patient being treated with or in need of treatment with an SGLT2 inhibitor as described herein includes a patient with a confirmed diagnosis of a disorder, such as HFrEF.
[0092] A "therapeutically effective amount" or "effective amount" refers to an amount effective, at dosages and for periods of time necessary, to achieve a desired therapeutic result (eg, treatment of HFrEF).
[0093] Prophylactic treatment refers to measures (e.g., administration of an SGLT2 inhibitor described herein to a subject) that prevent and / or slow the onset of the targeted pathological condition or disorder. Thus, those in need of prophylactic treatment include those susceptible to the disorder as well as those in whom the disorder is to be prevented. A "prophylactically effective amount" refers to an amount effective, at dosages and for periods of time necessary, to achieve the desired prophylactic result (e.g., prevention or delay of a fatal cardiovascular event).
[0094] The terms "patient" and "subject" refer to an adult individual who has been diagnosed with HFrEF and has been treated with standard of care HF medications as described herein prior to initiation of SGLT2 therapy. In some embodiments, the patient has been diagnosed with HFrEF for at least two months.
[0095] As used herein, the terms "heart failure with reduced ejection fraction," "HFrEF," or "patient with HFrEF" refer to a chronic disease in which the patient's left ventricular ejection fraction (LVEF) is ≦40% and the patient's heart failure symptoms fall into Stages II-IV of the New York Heart Association (NYHA) heart failure classification system. See Dolgin M, "Criteria Committee of the New York Heart Association; Nomenclature and Criteria for Diagnosis of Diseases of the Heart and Great Vessels," 9 th ed., Boston, MA: Little Brown & Co (1994). The NYHA heart failure classification system was used in enrolling patients in the Phase 3 clinical trial described in Example 1. In some embodiments, a "HFrEF patient" falls into Stage II of the NYHA HF classification. In some embodiments, a "HFrEF patient" falls into Stage III or IV of the NYHA HF classification.
[0096] In some embodiments, HFrEF patients have a left ventricular ejection fraction (LVEF) of 40% or less, although in some embodiments, the LVEF is 35%, 30%, or 25% or less. In some embodiments, the LVEF is at least 20%. Diagnosis and evaluation of HFrEF patients generally involves cardiac imaging and a physical examination, such as assessment of LVEF using an echocardiogram, radionuclide angiogram, angiography, or cardiac MRI.
[0097] The NYHA HF classification system categorizes heart failure into classes I to IV according to a subjective patient assessment of symptoms and classifies heart failure based on the patient's ability to function in daily life: Class I: No limitation of physical activity. Ordinary physical activity does not cause undue fatigue, palpitations, or dyspnea; Class II: Slight limitation of physical activity. Comfortable at rest. Ordinary physical activity causes fatigue, palpitations, or dyspnea; Class III: Significant limitation of physical activity. Comfortable at rest. Less than ordinary physical activity causes fatigue, palpitations, or dyspnea; Class IV: Unable to continue any physical activity without difficulty. Symptoms of heart failure at rest. Initiating any physical activity increases difficulty. Patients with NYHA stages II to IV were enrolled in the Phase III DAPA-HF trial described in Example 1.
[0098] As used herein, "standard of care for HF" refers to at least one standard of care for HF other than an SGLT2 inhibitor, e.g., at least two or at least three or more medications or classes of medications, used to treat HF, e.g., HFrEF. The standard of care for HF described herein can be used before and / or during administration of an SGLT2 inhibitor, e.g., dapagliflozin. Standard of care for HF and their dosages are well known to cardiologists and other physicians who examine and treat HFrEF patients. Exemplary standard of care for HF include angiotensin-converting enzyme (ACE) inhibitors; angiotensin receptor blockers (ARBs); beta-blockers; mineralocorticoid receptor drugs such as mineralocorticoid receptor antagonists (MRAs) and neprilysin inhibitors.
[0099] Other medications that may be used to treat HFrEF and therefore also be considered "standard of care for HF" include diuretics and loop diuretics (e.g., furosemide, bumetanide, and torsemide), digoxin, cardiac pump therapy drugs, selective sinus node depressants, ivabradine (a sinoatrial (SA) node modulator), aldosterone antagonists, vasodilators, calcium channel blockers (unless the patient has systolic heart failure), hydralazine / isosorbide dinitrate, or other HF medications according to clinical practice guidelines. See Yancy C. Wet et al., "ACC / AHA / HFSA focused update of the 2013 ACCF / AHA guideline for the management of heart failure: A report of the American College of Cardiology / American Heart Association task force on clinical practice guidelines and the Heart Failure Society of America," J Am Coll Cardiol. 70(6):776-803 (2017).
[0100] The terms "administer," "administering," "administration," and the like, as used herein, refer to methods that can be used to enable delivery of an agent, e.g., an SGLT2 inhibitor, as described herein. Administration techniques that can be used for the agents and methods described herein can be found, for example, in Goodman and Gilman, The Pharmacological Basis of Therapeutics, current edition, Pergamon; and Remington's, Pharmaceutical Sciences, current edition, Mack Publishing Co., Easton, Pa. In at least one embodiment, the SGLT2 inhibitor is administered orally.
[0101] Administration of an SGLT2 inhibitor "in combination with one or more other therapeutic agents" includes simultaneous (concurrent) or sequential administration at the same or different time points and in the same or different pharmaceutical compositions (e.g., pills, tablets, capsules). "Other therapeutic agents" include the standard HF treatments mentioned above or any of the other therapeutic agents listed below, such as antidiabetic agents, antiobesity agents, antihyperlipidemic agents, antiatherosclerotic agents, antihypertensive agents, antiplatelet agents, antithrombotic agents, or anticoagulant agents. "Other therapeutic agents" may be in the form of a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug.
[0102] In some cases, the other therapeutic agent is an antidiabetic agent such as a biguanide (e.g., metformin) and / or a DPP4 inhibitor (e.g., saxagliptin, linagliptin, or sitagliptin). Representative examples of SGLT2 inhibitor + antidiabetic drug combination preparations include the following: dapagliflozin / metformin extended-release (XIGDUO XR®), dapagliflozin / saxagliptin (QTERN®), dapagliflozin / saxagliptin / metformin (QTERNMET®), canagliflozin / metformin (INVOKAMET®), canagliflozin / metformin extended-release (INVOKAMET XR®), empagliflozin / linagliptin (GLYXAMBI®), empagliflozin / metformin (SYNJARDY®), empagliflozin / metformin extended-release (SYNJARDY®). XR®), ertugliflozin / metformin (STEGLUROMET®), and ertugliflozin / sitagliptin (STEGLUJAN®).
[0103] As used herein, a "heart failure event" refers to a hospitalization for HF and / or an emergency HF outpatient visit.
[0104] As used herein, "hospitalization for HF" or "HF hospitalization" refers to a hospitalization of at least 24 hours with a primary diagnosis of HF. In some embodiments, the hospitalized patient presents with new or worsening symptoms due to HF at the time of hospitalization. In some embodiments, the hospitalized patient has objective evidence of new or worsening HF. In some embodiments, the hospitalized patient undergoes initiation or intensification of specialized HF treatment. In some embodiments, the hospitalized patient has all of the aforementioned criteria.
[0105] As used herein, "HF symptoms" include at least one of dyspnea, decreased exercise tolerance, fatigue, or other symptoms of end-organ damage or fluid overload. In some embodiments, the HF symptoms are new or worsening since a previous period, clinic visit, or office visit.
[0106] As used herein, the "Kansas City Cardiomyopathy Questionnaire (KCCQ)" refers to a questionnaire used by physicians to assess a patient's HF symptoms and / or determine whether a patient's HF symptoms are improving or worsening. The KCCQ uses a scale of 0 to 100, with higher scores indicating fewer HF symptoms, and a change of 5 or more points is considered clinically significant. See Green, C.P., "Development and evaluation of the Kansas City Cardiomyopathy Questionnaire: a new health status measure for heart failure," J Am Coll Cardiol. 35:1245-1255 (2000). The KCCQ was administered in the DAPA-HF clinical trial (Example 1) as an index of health-related quality of life (HRQL). Analysis presented in Example 2 reveals that dapagliflozin reduced cardiovascular mortality and worsening HF across a range of baseline KCCQ values, while improving symptom burden, physical function, and quality of life in patients with HFrEF.
[0107] As used herein, "objective evidence of new or worsening HF" refers to a physician's physical examination finding and / or a new or worsening laboratory value that is believed to be attributable to HF. In some embodiments, objective evidence of new or worsening HF consists of at least two physical examination findings. In some embodiments, objective evidence of new or worsening HF consists of one physical examination finding and at least one laboratory value.
[0108] As used herein, "physical examination findings thought to be attributable to HF" (including new or worsening HF) include at least one of the following findings: peripheral edema, increasing abdominal distension or ascites; pulmonary rales / crackles / crepitus; increased jugular venous pressure and / or hepatojugular reflux; S3 gallop; and / or clinically significant or rapid weight gain associated with fluid retention.
[0109] As used herein, "new or worsening HF laboratory findings" refers to at least one of the following findings: an increased B-type natriuretic peptide / N-terminal pro-BNP (NT-proBNP) concentration consistent with decompensation of heart failure (e.g., BNP >500 pg / mL or NT-proBNP >2,000 pg / mL); radiological evidence of pulmonary congestion; a pulmonary capillary wedge pressure (pulmonary artery occlusion pressure) ≥18 mmHg, a central venous pressure ≥12 mmHg, or a cardiac index <2.2 L / min / m 2 Noninvasive diagnostic evidence of clinically significant elevated left or right ventricular filling pressures or low cardiac output, or invasive diagnostic evidence by right heart catheterization, indicating
[0110] As used herein, "initiating or intensifying specialized HF therapy" includes at least one of the following: increasing oral diuretic therapy; intravenous diuretics or vasoactive agents (e.g., inotropes, vasopressors, or vasodilators); mechanical or surgical intervention (e.g., mechanical circulatory support such as an intra-aortic balloon pump, ventricular assist device, extracorporeal membrane oxygenation, or total ventricular replacement device) and / or mechanical fluid removal (e.g., hyperfiltration, hemofiltration, dialysis).
[0111] As used herein, an "emergency HF visit" refers to an urgent walk-in visit to a doctor's office or emergency department / urgent room visit for the primary diagnosis of HF, but which does not meet the criteria for HF hospitalization. In some embodiments, patients in an emergency HF visit have HF symptoms and / or physical examination findings and / or new or worsening HF laboratory values, as previously described, and / or undergo initiation or intensification of specialized HF treatment, as previously described.
[0112] As used herein, "cardiovascular (CV) mortality" refers to mortality in a patient being treated for HFrEF, as described herein, due to: acute myocardial infarction (MI), sudden cardiac death, heart failure or cardiogenic shock, stroke (cerebrovascular event), cardiovascular procedures, cardiovascular hemorrhage, other cardiovascular causes (also refers to CV mortality due to specific known causes not included in the above categories, such as pulmonary obstruction or peripheral arterial disease).
[0113] As used herein, "non-cardiovascular (CV) mortality" refers to any mortality not included in "cardiovascular (CV) mortality."
[0114] As used herein, the term "primary composite endpoint" or "primary composite endpoint" refers to the number of any of the following HF events (as previously described) occurring in HFrEF patients receiving an SGLT2 inhibitor (e.g., dapagliflozin) along with HF standard of care: ·Cardiovascular (CV) mortality; HF hospitalization; or Emergency HF outpatient visits (defined above to include ER visits and emergency walk-in clinic visits) This refers to the determination of the relative risk reduction in patients taking an SGLT2 inhibitor (e.g., dapagliflozin) compared to patients taking a composite of the above and standard HF medications alone (see Example 1).
[0115] As used herein, the term "secondary endpoint" refers to a composite of the following HF events: CV death or HF hospitalization (as previously defined) and determination of the relative risk reduction in patients taking an SGLT2 inhibitor (e.g., dapagliflozin) compared to patients taking HF standard of care alone (see Example 1).
[0116] As described herein, the use of comparative phrases such as "reduced," "reduced," "worsened," "decreased," "worsening," "prolonged," "prolonged," etc., in relation to, for example, HF symptoms, HF events, HF hospitalizations, CV mortality, or non-CV mortality, is intended to refer to a comparison of HFrEF patients receiving an SGLT2 inhibitor (e.g., dapagliflozin) with respect to any of the following: · Patients (or patient populations) not taking SGLT2 inhibitors; ·Patients (or patient populations) taking only standard HF medications; A patient (or group of patients) receiving a placebo over the same period; A patient (or group of patients) receiving a placebo and standard of care HF medication for the same period of time; Patients who have not yet received an SGLT2 inhibitor; Average prognosis for a population of patients with HFrEF.
[0117] II.SGLT2 inhibitors As described herein, SGLT2 inhibitors can be used in the methods described herein to treat established HFrEF in patients with and without type 2 diabetes.
[0118] Sodium-glucose cotransporter 2 (SGLT2) is a sodium-dependent renal protein responsible for the reabsorption of glucose into the blood. SGLT2 inhibitors (also known as "gliflozins") are a class of drugs used to lower blood glucose in patients with type 2 diabetes by inhibiting the renal SGLT2 protein, resulting in more glucose being excreted in the urine.
[0119] SGLT2 inhibitors that can be used in the disclosed methods of treating patients with HFrEF include dapagliflozin (FARXIGA®), canagliflozin (INVOKANA®), empagliflozin (JARDIANCE®), ertugliflozin (STEGLATRO®), sotagliflozin, or ipragliflozin, or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0120] In at least one embodiment, the SGLT2 inhibitor used in the disclosed methods of treating patients with HFrEF is dapagliflozin, as described in U.S. Patent Nos. 6,414,126 and 6,515,117 (incorporated herein by reference in their entireties). FARXIGA® was approved by the USFDA in 2014 as monotherapy and then in 2017-2019 as part of combination therapies (XIGDUO®, QTERN®, QTERNMET®) in conjunction with diet and exercise to improve glycemic control in adults with type 2 diabetes. Dapagliflozin can be administered in doses of 2.5 mg, 5.0 mg, or 10 mg. In at least one embodiment, a 10 mg dose is administered for use in the disclosed methods.
[0121] In some embodiments, "dapagliflozin" may refer to the FDA-approved formulation FARXIGA®, or may refer to a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug. In some embodiments, dapagliflozin has the structure: [ka] It is in the form of an (S)-propylene glycol ((S)-(PG) solvate having the formula:
[0122] In some embodiments, the dapagliflozin is in the form of a crystalline solid or an amorphous solid.
[0123] In some embodiments, dapagliflozin is formulated as a fixed-dose combination product with another therapeutic agent, such as another antidiabetic agent. Dapagliflozin / metformin extended-release (XIGDUO®), dapagliflozin / saxagliptin (QTERN®), and dapagliflozin / saxagliptin / metformin (QTERNMET®) are examples of combination products that include dapagliflozin.
[0124] III. Standard HF treatment As used herein, "standard of care for HF" includes at least one, e.g., at least two, at least three or more medications or classes of medications other than an SGLT2 inhibitor used to treat HF, e.g., HFrEF. The standard of care for HF can be used before and / or during administration of an SGLT2 inhibitor, e.g., dapagliflozin, as described herein. In some embodiments, the standard of care for HF and the SGLT2 inhibitor are administered together, at the same time or at different times.
[0125] Exemplary HF standard medications include angiotensin-converting enzyme (ACE) inhibitors; angiotensin receptor blockers (ARBs); beta-blockers; mineralocorticoid receptor drugs such as mineralocorticoid receptor antagonists (MRAs) and neprilysin inhibitors. HF standard medications and their dosages are well known to cardiologists and other physicians who examine and treat HFrEF patients. A brief description of these HF standard medications is provided below.
[0126] ACE inhibitors cause vasodilation in both the venous and arterial systems, thereby reducing preload and afterload, increasing blood flow to vital organ systems, and improving ejection fraction. These medications also block the enzyme required to convert angiotensin I to angiotensin II, a potent vasoconstrictor that increases blood pressure and releases aldosterone, leading to sodium and water retention. ACE inhibitors block this cascade of action. Representative examples of ACE inhibitors include captopril, enalapril, and lisinopril.
[0127] ARBS, like ACE inhibitors, block the action of angiotensin II. ARBs block angiotensin II in blood vessels and the adrenal gland. Within the blood vessels, ARBs cause venous and arterial dilation, reducing both preload and afterload. Blocking angiotensin II receptors in the adrenal gland reduces the release of aldosterone, which in turn increases sodium and water excretion. Representative examples of ARBs include valsartan, losartan, and irbesartan.
[0128] Beta-blockers reduce sympathetic nervous system stimulation, lower heart rate and blood pressure, and improve left ventricular function, hemodynamics, and exercise tolerance. Representative examples of beta-blockers include atenolol, propranolol, bisoprolol, carvedilol, and sustained-release metoprolol.
[0129] Mineralocorticoid receptor antagonists (MRAs) or "aldosterone antagonists" are diuretics that antagonize the action of aldosterone at the mineralocorticoid receptor. This group of drugs is often used as adjunctive therapy in combination with other medications for the management of chronic heart failure. Representative examples of MRAs include spironolactone and eplerenone.
[0130] Mineralocorticoid receptor modulators (MRMs) are used to describe compounds that exhibit either tissue- or cell-specific receptor antagonism, full antagonism, or partial antagonism.
[0131] Neprilysin inhibitors break down natriuretic peptides, which are responsible for sodium and water loss when the ventricles are overloaded. By slowing their breakdown, they prolong their effect, allowing more sodium and water to be removed from the body, reducing intravascular volume and blood pressure, thereby reducing preload and afterload. A representative example of a neprilysin inhibitor is sacubitril. Neprilysin inhibitors can be combined with angiotensin-receptor neprilysin inhibitors (ARBs) to form a new class of heart failure medications called angiotensin receptor neprilysin inhibitors. The first-in-class drug, sacubitril / valsartan, combines an ARB (valsartan) with a neprilysin enzyme inhibitor (sacubitril).
[0132] Other medications that can be used to treat HFrEF and therefore may be considered "standard of care for HF" include diuretics and loop diuretics (e.g., furosemide, bumetanide, and torsemide), digitalis or other heart pump therapy medications, hydralazine / isosorbide dinitrate, ivabradine (a sinoatrial (SA) node modulator), or other HF medications that comply with clinical practice guidelines. See Yancy C. Wet et al., "ACC / AHA / HFSA focused update of the 2013 ACCF / AHA guideline for the management of heart failure: A report of the American College of Cardiology / American Heart Association task force on clinical practice guidelines and the Heart Failure Society of America," J Am Coll Cardiol. 70(6):776-803 (2017).
[0133] IV. Other Therapeutic Drugs As described herein, administration of an SGLT2 inhibitor may be in combination with one or more "other therapeutic agents." As used herein, the phrase "other therapeutic agents" typically does not include the HF standard of care drugs discussed above, unless the context dictates otherwise.
[0134] Other therapeutic agents that may be administered together with the SGLT2 inhibitors described herein include antidiabetic agents, antiobesity agents, antihyperlipidemic agents, antiatherosclerotic agents, antihypertensive agents, antiplatelet agents, antithrombotic agents, or anticoagulant agents. The "other therapeutic agents" may be in the form of a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug.
[0135] Administration of an SGLT2 inhibitor in combination with one or more "other therapeutic agents" includes simultaneous (concurrent) or sequential administration at the same or different times and in the same or different pharmaceutical compositions (e.g., pills, tablets, capsules).
[0136] In some cases, the other therapeutic agent is an antidiabetic agent such as a biguanide (e.g., metformin) and / or a DPP4 inhibitor (e.g., saxagliptin, linagliptin, or sitagliptin). Representative examples of SGLT2 inhibitor + antidiabetic drug combination preparations include the following: dapagliflozin / metformin extended-release (XIGDUO®), dapagliflozin / saxagliptin (QTERN®), dapagliflozin / saxagliptin / metformin (QTERNMET®), canagliflozin / metformin (INVOKAMET®), canagliflozin / metformin extended-release (INVOKAMET XR®), empagliflozin / linagliptin (GLYXAMBI®), empagliflozin / metformin (SYNJARDY®), empagliflozin / metformin extended-release (SYNJARDY XR®), ertugliflozin / metformin (STEGLUROMET®), and ertugliflozin / sitagliptin (STEGLUJAN®).
[0137] V. Methods for Treating HFrEF by Administering SGLT2 Inhibitors The present disclosure provides methods of treating HFrEF in a patient, comprising administering to the patient an effective amount of a sodium-glucose cotransporter 2 (SGLT2) inhibitor as described herein. In some embodiments, the patient also has type 2 diabetes. In some embodiments, the patient does not have type 2 diabetes.
[0138] The present disclosure also provides a method of treating HFrEF in a patient without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor, wherein the patient does not experience adverse events associated with renal failure during treatment.
[0139] The present disclosure also provides a method of treating HFrEF in a patient with T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor, wherein the patient does not experience adverse events associated with renal failure during treatment.
[0140] In some embodiments, "freedom from adverse events related to renal failure" includes no change or only a slight decrease in the patient's estimated glomerular filtration rate (eGFR) level, no end-stage renal disease (ESRD) and / or no death from renal causes while receiving SGLT2 inhibitor therapy.
[0141] In some embodiments, the SGLT2 inhibitor is dapagliflozin, canagliflozin, empagliflozin, sotagliflozin, ipragliflozin, or ertugliflozin, or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof.
[0142] In at least one embodiment, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In some embodiments, the dapagliflozin is in the form of a non-crystalline solid. In some embodiments, the dapagliflozin is in the form of a crystalline solid. In some embodiments, the dapagliflozin is in the form of an (S)-propylene glycol ((S)-(PG) solvate, which has the structure: [ka] It has.
[0143] In some embodiments, an SGLT2 inhibitor (e.g., dapagliflozin) is orally administered to a patient once daily. In some embodiments, dapagliflozin is administered to a patient once daily at a dose of 2.5 mg, 5.0 mg, or 10 mg. In at least one embodiment, the dose of dapagliflozin administered is 10 mg.
[0144] In some embodiments, the method of treating HFrEF in a patient further comprises administering to the patient at least one other therapeutic agent, administered together with the SGLT2 inhibitor at the same or different time and in the same or different pharmaceutical composition.
[0145] In some embodiments, the other therapeutic agent is an antidiabetic agent, an antiobesity agent, an antihyperlipidemic agent, an antiatherosclerotic agent, an antihypertensive agent, an antiplatelet agent, an antithrombotic agent, or an anticoagulant agent.
[0146] In some embodiments, the other therapeutic agent is an antidiabetic agent. In some embodiments, the antidiabetic agent is a biguanide and / or a DPP4 inhibitor. In some embodiments, the biguanide is metformin or a pharmaceutically acceptable salt thereof. In some embodiments, the DPP4 inhibitor is saxagliptin, linagliptin, or sitagliptin or a pharmaceutically acceptable salt thereof.
[0147] In some embodiments, the HFrEF patient is receiving one or more standard of care HF medications to treat HF prior to or during administration of an SGLT2 inhibitor, in some embodiments, the standard of care HF medications are selected from the group consisting of angiotensin-converting enzyme (ACE) inhibitors, angiotensin II receptor blockers (ARBs), beta-blockers, mineralocorticoid receptor medications such as mineralocorticoid receptor antagonists (MRAs), neprilysin inhibitors, and diuretics.
[0148] In certain embodiments, the at least one standard of care HF treatment is a therapeutically effective amount of an angiotensin-converting enzyme (ACE) inhibitor.
[0149] In certain embodiments, the at least one standard of care HF treatment is a therapeutically effective amount of an angiotensin II receptor blocker (ARB).
[0150] In certain embodiments, at least one standard of care HF treatment is a beta-blocker.
[0151] In certain embodiments, at least one standard of care HF treatment is a mineralocorticoid receptor drug, such as a mineralocorticoid receptor antagonist (MRA).
[0152] In certain embodiments, at least one standard of care HF treatment is a neprilysin inhibitor. In some embodiments, the neprilysin inhibitor is combined with an angiotensin II receptor antagonist (e.g., sacubitril / valsartan).
[0153] In certain embodiments, at least one standard of care HF treatment is a loop diuretic.
[0154] In some embodiments, administration of an SGLT2 inhibitor to a patient may result in one of the following outcomes: (i) prolonging the time to first heart failure (HF) event and / or fatal cardiovascular (CV) event; and / or (ii) reducing the worsening of heart failure symptoms; and / or (iii) reducing the number of heart failure events and / or the incidence of fatal cardiovascular events This will result in at least one of the following:
[0155] In some embodiments, a "HF event" is a hospitalization for HF or an emergency HF outpatient visit.
[0156] In some embodiments, hospitalization for HF includes hospitalization lasting at least 24 hours with a primary diagnosis of HF.
[0157] In some embodiments, administration of an SGLT2 inhibitor reduces the total number of hospitalizations for HF, including initial and / or re-admissions.
[0158] In some embodiments, hospitalization for HF is due to one or more of the following criteria: (i) new or worsening symptoms of HF experienced by the patient; and / or (ii) objective evidence of new or worsening symptoms of HF; and / or (iii) initiation or intensification of HF specialty treatment. In some embodiments, hospitalization for HF is due to all of the above-listed criteria. In some embodiments, new or worsening symptoms of HF experienced by the patient include dyspnea, decreased exercise tolerance, fatigue, and / or other symptoms of worsening end-organ damage or fluid overload. In some embodiments, objective evidence of new or worsening symptoms of HF includes physical examination findings attributable to HF and / or new or worsening HF laboratory values. In some embodiments, physical examination findings include at least two of the following: peripheral edema, increasing abdominal distension or ascites, pulmonary rales / crackles / crepitus, increased jugular venous pressure and / or hepatojugular reflux, S3 gallop, and / or clinically significant or rapid weight gain associated with fluid retention. In some embodiments, new or worsening HF laboratory findings include at least one of the following: increased B-type natriuretic peptide (BNP) / N-terminal pro-BNP (NT-proBNP) levels consistent with heart failure decompensation; radiological evidence of pulmonary congestion; non-invasive diagnostic evidence of clinically significantly elevated left or right ventricular filling pressures or low cardiac output or invasive diagnostic evidence by right heart catheterization. In some embodiments, initiating or intensifying HF specialty therapy includes at least one of the following: increasing oral diuretic therapy, intravenous administration of diuretics or vasoactive agents, or mechanical or surgical intervention. Mechanical or surgical intervention includes mechanical circulatory support or mechanical fluid removal.
[0159] In some embodiments, an emergency HF visit is an emergency room visit for a primary diagnosis of HF, but does not require hospitalization. In some embodiments, an emergency HF visit is an urgent, walk-in visit to a doctor's office for a primary diagnosis of HF. In some embodiments, the patient is experiencing HF symptoms and / or has physical examination findings and / or new or worsening laboratory values for HF. In some embodiments, the patient experiences one or more symptoms of HF selected from the group consisting of dyspnea, decreased exercise tolerance, fatigue, and / or other symptoms of worsening end-organ damage or fluid overload. In some embodiments, the patient undergoes initiation or intensification of specialized HF treatment. In some embodiments, an emergency HF visit requires intravenous therapy.
[0160] In some embodiments, administration of an SGLT2 inhibitor extends the time to a fatal CV event.
[0161] In some embodiments, the time to first heart failure event and / or fatal cardiovascular event may be delayed by 6 to 24 months from the first administration of an SGLT2 inhibitor. In some embodiments, the time to first heart failure event may be delayed by 6 to 24 months from the first administration of an SGLT2 inhibitor. In some embodiments, the time to fatal cardiovascular event may be delayed by 6 to 24 months from the first administration of an SGLT2 inhibitor.
[0162] In some embodiments, administration of an SGLT2 inhibitor reduces worsening of HF symptoms in a treated patient. In some embodiments, the reduced worsening of the patient's heart failure symptoms occurs over a period of 12 to 36 months.
[0163] In some embodiments, the reduced worsening of heart failure symptoms is characterized by a reduced number of hospitalizations for HF for the patient. In some embodiments, the reduced worsening of heart failure symptoms is characterized by a reduced number of emergency HF visits for the patient. In some embodiments, emergency HF visits are emergency room visits or emergency outpatient clinic visits.
[0164] In some embodiments, the reduced worsening of heart failure symptoms is characterized by a higher score on the Kansas City Cardiomyopathy Questionnaire (KCCQ) for the patient compared to the patient's score before administration of the SGLT2 inhibitor. In some embodiments, the higher score on the KCCQ occurs within 8 months of initiating SGLT2 inhibitor administration. In some embodiments, the higher score on the KCCQ is at least 5 points higher than the score before administration of the SGLT2 inhibitor. In some embodiments, the higher score on the KCCQ is at least 10 points higher than the score before administration of the SGLT2 inhibitor. In some embodiments, the higher score on the KCCQ is at least 15 points higher than the score before administration of the SGLT2 inhibitor.
[0165] In some embodiments, the reduced worsening of heart failure symptoms is characterized by a higher patient score based on the Patient Global Impression of Change (PGIC) questionnaire compared to the patient's score before administration of the SGLT2 inhibitor. In some embodiments, the higher score based on the PGIC occurs within 8 months of initiating SGLT2 inhibitor administration. In some embodiments, the higher score based on the PGIC is at least 1 point higher than the score before administration of the SGLT2 inhibitor. In some embodiments, the higher score based on the PGIC is at least 2 points higher than the score before administration of the SGLT2 inhibitor. In some embodiments, the higher score based on the PGIC is at least 3 points higher than the score before administration of the SGLT2 inhibitor.
[0166] In some embodiments, the reduced worsening of heart failure symptoms is characterized by a higher patient score based on the Patient Global Impression of Severity (PGIS) questionnaire compared to the patient's score before administration of the SGLT2 inhibitor. In some embodiments, the higher score based on the PGIS occurs within 8 months of initiating SGLT2 inhibitor administration. In some embodiments, the higher score based on the PGIS is at least 1 point higher than the score before administration of the SGLT2 inhibitor. In some embodiments, the higher score based on the PGIS is at least 2 points higher than the score before administration of the SGLT2 inhibitor. In some embodiments, the higher score based on the PGIS is at least 3 points higher than the score before administration of the SGLT2 inhibitor.
[0167] In some embodiments, administration of an SGLT2 inhibitor reduces the number of HF events and / or reduces the incidence of fatal cardiovascular events.
[0168] In some embodiments, administration of an SGLT2 inhibitor reduces the number of HF events. In some embodiments, the HF events are hospitalizations for HF or emergency HF outpatient visits. In some embodiments, administration of an SGLT2 inhibitor reduces the number of HF hospitalizations. In some embodiments, administration of an SGLT2 inhibitor reduces the number of emergency HF outpatient visits. In some embodiments, the emergency HF outpatient visits are emergency room visits. In some embodiments, the emergency HF outpatient visits require intravenous therapy.
[0169] In some embodiments, administration of an SGLT2 inhibitor reduces the incidence of fatal cardiovascular events.
[0170] In some embodiments, administration of an SGLT2 inhibitor reduces the composite of hospitalization for HF or a fatal cardiovascular event.
[0171] In some embodiments, administration of an SGLT2 inhibitor to adults with HFrEF reduces the risk of cardiovascular death and worsening heart failure and improves heart failure symptoms.
[0172] In some embodiments, the HFrEF patient has an eGFR of ≧30 ml / min / 1.73 m2 before administration of the SGLT2 inhibitor. In some embodiments, the HFrEF patient maintains an eGFR of ≧30 ml / min / 1.73 m2 during administration of the SGLT2 inhibitor.
[0173] In some embodiments, the HFrEF patient has a plasma N-terminal pro-B-type natriuretic peptide (NT-proBNP) level of at least 400 pg per milliliter, at least 600 pg per milliliter, or at least 900 pg per milliliter before administration of the SGLT2 inhibitor.
[0174] In some embodiments, the patient has been medically diagnosed with symptomatic HFrEF prior to administration of the SGLT2 inhibitor. In some embodiments, the patient has been diagnosed with HFrEF at least two months prior to administration of the SGLT2 inhibitor.
[0175] In some embodiments, the HFrEF patient has atrial fibrillation and / or atrial flutter before administration of the SGLT2 inhibitor. In some embodiments, the HFrEF patient does not have atrial fibrillation or atrial flutter before administration of the SGLT2 inhibitor. In at least one embodiment, the methods disclosed herein reduce the incidence of atrial fibrillation in HFrEF patients who do not have atrial fibrillation or atrial flutter before administration of the SGLT2 inhibitor.
[0176] In some embodiments, administration of an SGLT2 inhibitor reduces HbA1c in a HFrEF patient. In some embodiments, administration of an SGLT2 inhibitor reduces systolic blood pressure in a HFrEF patient. In some embodiments, administration of an SGLT2 inhibitor reduces body weight in a HFrEF patient. In certain embodiments, the disclosed methods result in a decrease in NT-proBNP levels in a patient. In some embodiments, this decrease occurs within 8 months of initiating administration of the SGLT2 inhibitor. In certain embodiments, the disclosed methods result in a decrease in eGFR (ml / min / 1.73 m) in a patient. 2 This results in a sustained drop in the
[0177] In some embodiments, administration of an SGLT2 inhibitor results in an improvement in NYHA HF classification.
[0178] In some embodiments, administration of an SGLT2 inhibitor results in a reduction in re-hospitalization for HF or a reduction in recurrent HF events, hi some embodiments, recurrent HF events include hospitalization for HF or emergency HF outpatient visits.
[0179] In some embodiments, administration of an SGLT2 inhibitor results in a reduced incidence of all-cause mortality, including cardiovascular and non-cardiovascular mortality, in patients with or without T2D. In some embodiments, administration of an SGLT2 inhibitor results in a reduced incidence of non-cardiovascular mortality.
[0180] In another aspect, the disclosure provides a method for reducing the rate of a primary composite endpoint of cardiovascular death, HF hospitalization, or emergency HF outpatient visit in HFrEF patients treated with an SGLT2 inhibitor and a standard of care HF therapy, where the rate is reduced relative to patients treated with the standard of care HF therapy alone. In another aspect, the disclosure provides a method for reducing the rate of a secondary composite endpoint of cardiovascular death or HF hospitalization in HFrEF patients treated with an SGLT2 inhibitor and a standard of care HF therapy, where the rate is reduced relative to patients treated with the standard of care HF therapy alone. In some embodiments, the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. In some embodiments, dapagliflozin is administered at 10 mg once daily.
[0181] In another aspect, the present disclosure provides a method of preventing or delaying a fatal CV event in a patient with HFrEF without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor as described herein.
[0182] The present disclosure also provides a method for preventing or delaying a fatal CV event in a patient with HFrEF and T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor as described herein.
[0183] In some embodiments, the SGLT2 inhibitor is dapagliflozin (FARXIGA®), canagliflozin (INVOKANA®), empagliflozin (JARDIANCE®), ertugliflozin (STEGLATRO®), sotagliflozin, or ipragliflozin, or a pharmaceutically acceptable salt, solvate, solvate, complex, or prodrug thereof.
[0184] In at least one embodiment, the SGLT2 inhibitor is dapagliflozin, as described herein. In some embodiments, the dapagliflozin is administered at a dose of 2.5 mg, 5 mg, or 10 mg once daily. In at least one embodiment, the dapagliflozin is administered at a dose of 10 mg once daily.
[0185] In another aspect, the present disclosure also provides a method of reducing the total number of standard of care HF medications taken by a patient with HFrEF without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor as described herein.
[0186] The present disclosure also provides a method for reducing the total number of standard HF medications taken by a patient with HFrEF and T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor.
[0187] In some embodiments, administering an effective amount of an SGLT2 inhibitor to a patient with HFrEF as described herein allows the patient to reduce the total number of standard HF medications the patient takes. In some embodiments, the total number of standard HF medications is reduced to 2, 3, or 4. Reducing the total number of standard HF medications a patient must take improves health-related quality of life for patients with and without TD2 HFrEF.
[0188] The following examples further illustrate the present disclosure but, of course, should not be construed as in any way limiting the scope of the disclosure. [Example]
[0189] Example 1 DAPA-HF Phase III Clinical Trial Results Introduction Large clinical trials including participants with type 2 diabetes (T2D) have demonstrated that inhibitors of sodium-glucose cotransporter 2 (SGLT2) reduce the risk of heart failure (HF) hospitalization. 1~4 However, notably, most patients in these trials did not have HF at baseline, so the benefit of SGLT2i treatment translated largely into prevention of incident HF events. Notably, the reduction in heart failure hospitalizations was observed early after randomization, raising the possibility of a different mechanism or mode of action than those typically postulated to explain the cardiovascular benefits of glucose-lowering therapy. 5~9 In addition to the diuretic and associated hemodynamic effects of SGLT2 inhibitors, effects on myocardial metabolism, ion transporters, fibrosis, adipokines, and uric acid have also been demonstrated. 5~9 Most of these effects, as well as the preservation of renal function, likely benefit patients with established heart failure (including those without diabetes) who have not undergone trials of SGLT2 inhibitors. 4、10、11
[0190] The DAPA-HF (Dapagliflozin and Prevention of Adverse Outcomes in Heart Failure) clinical trial was designed to evaluate the potential efficacy and safety of SGLT2 inhibitors in chronic heart failure in patients with reduced ejection fraction (LVEF ≤ 40%), both with and without T2D. 12、13 In this example, the results of a DAPA-HF Phase III clinical trial are provided.
[0191] method Clinical trial design and supervision AstraZeneca sponsored the trial and collected and analyzed the data. 12、13 The clinical trial was conducted and reported in accordance with the protocol and statistical analysis plan. The trial was approved by the ethics committees of each study site. The safety of patients participating in the trial was regularly reviewed by an independent data monitoring committee. The sponsor's analyses were replicated by an independent academic group at the University of Glasgow.
[0192] Study patients Eligibility requirements included age at least 18 years, New York Heart Association (NYHA) class II, III, or IV symptoms, and an ejection fraction of 40% or less. Patients were required to have a plasma N-terminal pro-B-type natriuretic peptide (NT-proBNP) level of at least 600 pg per milliliter, or at least 400 pg per milliliter if they had been hospitalized for heart failure within the past 12 months. Patients with atrial fibrillation or atrial flutter on baseline electrocardiogram were required to have an NT-proBNP level of at least 900 pg / mL, regardless of prior hospitalization for heart failure. Patients were required to receive standard medication and device therapy for heart failure, including angiotensin-converting enzyme (ACE) inhibitors, angiotensin receptor blockers (ARBs), or sacubitril / valsartan; beta-blockers unless contraindicated or intolerable; and mineralocorticoid receptor (MR) agents, if deemed appropriate. Doses were individually optimized according to guideline-recommended targets and required to be stable for at least 4 weeks (excluding diuretics, which were flexibly dosed). Investigators recommended that patients with type 2 diabetes continue taking their hypoglycemic medications, but these could be adjusted as needed. Specifically, the protocol stated that, for example, to minimize the risk of hypoglycemia in patients with baseline hemoglobin A1c (HbA1c) levels below 7%, the dose of insulin, sulfonylurea medication, or both could be reduced.
[0193] Exclusion criteria included recent treatment with or intolerance to SGLT2 inhibitors, type 1 diabetes, symptoms of hypotension or systolic blood pressure less than 95 mm Hg, recent worsening heart failure or other cardiovascular event or surgery (or planned surgery), and a body surface area of 1.73 m 2 Estimated glomerular filtration (eGFR) of less than 30 ml per minute (or rapid decline in renal function) was included.
[0194] Clinical trial procedures After providing full written informed consent, patients entered a 14-day enrollment period, during which study inclusion and exclusion criteria were reviewed and baseline information, including findings from clinical and laboratory tests, was collected. After this period, patients were randomly assigned to receive dapagliflozin 10 mg once daily or matching placebo according to a balanced block randomization schedule to ensure a near 1:1 ratio between the two treatments. Investigators performed treatment assignments using an automated voice or web response system. Randomization was stratified based on the diagnosis of type 2 diabetes, defined as either a confirmed diagnosis or a centrally confirmed HbA1c value of 6.5% or greater (≥48 mmol / mol) at screening. Patients were evaluated 14 and 60 days after randomization, focusing on assessment of heart failure and volume status, adverse events, and renal function and potassium testing. Additional study visits were conducted at 4 months and every 4 months thereafter. The protocol required that any further study drug administration be discontinued if pregnancy-related or diabetic ketoacidosis occurred. In the event of (or to avoid) a sudden, unexpected decline in eGFR, volume depletion, or hypotension, dose reduction (to dapagliflozin 5 mg per day or matching placebo) or temporary interruption was permitted, with subsequent dose escalation (or treatment resumption) recommended if possible.
[0195] Clinical trial endpoints The primary outcome was a composite of a first episode of worsening heart failure or death from cardiovascular causes. An episode of worsening heart failure was either an unplanned hospitalization for heart failure or an emergency heart failure outpatient visit requiring intravenous therapy. 14 The first secondary outcome was a composite of heart failure hospitalization or cardiovascular death. Other secondary outcomes were: total number of recurrent heart failure hospitalizations (including rehospitalizations) and cardiovascular deaths; and change from baseline to 8 months in the Kansas City Cardiomyopathy Questionnaire (KCCQ) total symptom score, using a 0-100 scale (higher scores indicate fewer symptoms; a change of 5 or more points is considered clinically important). 15 a sustained decline in eGFR of 50% or more, end-stage renal disease (sustained eGFR < 15 mL / min / 1.73 m 2 The incidence of a composite endpoint of worsening renal function, consisting of renal death (defined as persistent dialysis, or kidney transplantation) or renal death; and death from any cause; in all cases, persistent meant lasting at least 28 days. 12
[0196] Endpoints were determined according to prespecified criteria by a clinical endpoint committee blinded to treatment allocation.
[0197] statistical analysis For the primary endpoint, we estimated a hazard ratio (HR) of 0.80 for dapagliflozin compared with placebo. Using a 5% two-sided alpha, we calculated that 844 primary endpoints would provide 90% statistical power for hypothesis testing. With an expected annual event rate of 11% in the placebo treatment group, we estimated that approximately 4,500 patients would experience the required number of primary events based on an expected mobilization period of 18 months and a mean follow-up period of approximately 24 months. Closed testing procedures were used, including prespecified hierarchical testing of the primary and secondary endpoints in the order specified above. Type I error was controlled for multiplicity across the primary and secondary endpoints at the two-sided 0.0499 alpha level, and one intermediate-effect analysis was considered.
[0198] Data from all randomized patients were included in the analysis of primary and secondary endpoints according to the intention-to-treat principle. Baseline characteristics were summarized as means and standard deviations, medians and interquartile ranges, or percentages. Longitudinal measures, such as glycated hemoglobin (HbAlc) and body weight, were analyzed using mixed models for repeated measures to estimate least-squares mean differences between treatment groups with 95% confidence intervals. Time-to-event data were evaluated using Kaplan-Meier estimates and Cox proportional hazards models, stratifying by diabetes status with history of heart failure hospitalization and treatment history as fixed-effect factors (for renal endpoints, baseline eGFR was included instead of history of heart failure hospitalization); hazard ratios, 95% confidence intervals, and two-sided P values were calculated using the Cox model.
[0199] A semiparametric proportional rate model was used to analyze total events (including recurrences) to examine treatment effects and to quantify treatment differences. 16
[0200] KCCQ total symptom scores were analyzed as a composite rank-based endpoint incorporating patient vital status at 8 months, along with the change in score from baseline to 8 months in surviving patients, using the rank analysis of covariance method with the corresponding win ratio used to estimate the magnitude of treatment effect. 17Consistency of treatment effects across 14 prespecified groups was assessed. Prespecified safety analyses included the following: serious adverse events; adverse events related to discontinuation of study treatment; "adverse events of interest" (i.e., volume depletion, renal events, major hypoglycemic events, fractures, diabetic ketoacidosis, amputation); Fournier's gangrene; and laboratory tests of interest. Other adverse events were not routinely collected given the large amount of historical safety data collected on dapagliflozin. Safety analyses were performed on patients who underwent randomization and received at least one dose of dapagliflozin or placebo. Adverse event rates were compared using Fisher's exact test. Analyses were performed using Stata, version 15 (College Station, TX, USA) and R, version 3.5.1 (R Foundation for Statistical Computing, Vienna, Austria).
[0201] result Subject patients Between February 15, 2017, and August 17, 2018, 4744 patients were randomized to receive 10 mg of dapagliflozin once daily or matching placebo at 410 centers in 20 countries (Figure 1). Patient characteristics and heart failure treatments were well balanced between study arms at baseline (Table 1).
[0202] [Table 1]
[0203] [Table 2]
[0204] Study drug administration and follow-up Excluding discontinuations due to death, 249 patients (10.5%) receiving dapagliflozin and 258 patients (10.9%) receiving placebo discontinued the study drug (P = 0.71). At the last assessment, of the patients receiving study drug, 2039 (98.1%) in the dapagliflozin group maintained the 10 mg / day dose; 1993 (98.2%) received an equivalent dose of placebo. At the end of the study, no patients in the dapagliflozin group and two in the placebo group had unknown vital status (Figure 1). The median follow-up period was 18.2 months.
[0205] Test evaluation items Worsening heart failure events or death from cardiovascular causes (primary endpoint) occurred in 386 patients (16.3%) in the dapagliflozin group and 502 patients (21.2%) in the placebo group (hazard ratio, 0.74; 95% confidence interval [CI], 0.65 to 0.85; P < 0.001 (Figure 2A and Table 2). Event rates for all three components of the composite endpoint favored dapagliflozin; the most common worsening heart failure event was hospitalization (Figure 2 and Table 2). 231 (9.7%) of patients receiving dapagliflozin were hospitalized for heart failure, compared with 502 (21.2%) in the placebo group. and 318 (13.4%) patients receiving placebo (hazard ratio, 0.70; 95% CI, 0.59 to 0.83; P < 0.001) (Figure 2B and Table 2). Death from cardiovascular causes occurred in 227 patients (9.6%) in the dapagliflozin group and 273 patients (11.5%) in the placebo group (hazard ratio, 0.82; 95% CI, 0.69 to 0.98; P < 0.03) (Figure 2C and Table 2). Over the course of the trial, 21 patients would have needed to be treated with dapagliflozin to prevent one major event.
[0206] The secondary endpoint of heart failure hospitalization or cardiovascular death was reduced with dapagliflozin (hazard ratio, 0.75; 95% CI, 0.65 to 0.85; P<0.001) (Figure 2). There were a total of 567 first and recurrent events in the dapagliflozin arm (340 heart failure hospitalizations and 227 cardiovascular deaths in 382 patients) and 742 events in the placebo arm (469 heart failure hospitalizations and 273 cardiovascular deaths in 495 patients), yielding a ratio of 0.75 (95% CI, 0.65 to 0.88; P<0.001) (Table 2).
[0207] The KCCQ total symptom score increased from baseline to 8 months by a median of 6.1 ± 18.6 points in the dapagliflozin group and 3.3 ± 19.2 points in the placebo group (between-group difference, 2.8 points; 95% CI, 1.6 to 4.0 (Winn ratio, 1.18; 95% CI, 1.11, 1.26; P < 0.001) (Table 2). Compared with placebo, more patients in the dapagliflozin group had a score improvement of 5 or more points (58% vs. 51%; OR 1.15, 95% CI, 1.08, 1.23; P < 0.001), and fewer had a worsening (25% vs. 33%; OR 0.84, 95% CI, 0.78, 0.90; P < 0.001).
[0208] The prespecified renal composite end point occurred in 28 patients (1.2%) receiving dapagliflozin and 39 patients (1.6%) receiving placebo (hazard ratio, 0.71; 95% CI, 0.44 to 1.16; P = 0.17) (Table 2).
[0209] In total, 276 patients (11.6%) in the dapagliflozin group and 329 patients (13.9%) in the placebo group died from any cause (hazard ratio, 0.83; 95% CI, 0.71 to 0.97) (Figure 2D and Table 2). The effect of dapagliflozin on worsening heart failure and death is summarized in Figure 3.
[0210] The effect of dapagliflozin on the primary endpoint was generally consistent across prespecified subgroups, including patients without diabetes at baseline, but benefit was lower in patients with NYHA functional class III and IV compared with class II (Figure 4). In a post hoc subgroup analysis of patients taking sacubitril-valsartan at baseline, the dapagliflozin-to-placebo hazard ratio for the primary endpoint was 0.75 (95% CI, 0.50, 1.13) compared with 0.74 (0.65, 0.86) in patients not taking sacubitril-valsartan.
[0211] [Table 3]
[0212] [Table 4]
[0213] Other evaluation items Changes in glycosylated hemoglobin, hematocrit, plasma potassium, systolic blood pressure, and weight from baseline to 8 months are shown in Table 3. Mean creatinine concentrations increased by 0.08 ± 0.19 mg per deciliter in the dapagliflozin group and 0.01 ± 0.17 mg per deciliter in the placebo group from baseline to 2 weeks (between-group difference, 0.07 mg per deciliter; 95% CI, 0.05 to 0.08; P < 0.001); the corresponding changes at 8 months were 0.07 ± 0.24 and 0.04 ± 0.25 mg per deciliter, respectively (difference, 0.02 mg per deciliter; 95% CI, 0.01 to 0.04; P = 0.04). The mean creatinine concentration increased by 0.08 ± 0.19 mg per deciliter and 0.01 ± 0.17 mg per deciliter in the placebo group from baseline to 2 weeks (between-group difference, 0.07 mg per deciliter; 95% CI, 0.05 to 0.08; P = 0.001). The mean creatinine concentration increased by 0.08 ± 0.19 mg per deciliter and 0.01 ± 0.17 mg per deciliter in the placebo group from baseline to 2 weeks (between-group difference, 0.07 mg per deciliter; 95% CI, 0.05 to 0.08; P = 0.04). The mean creatinine concentration increased by 0.08 ± 0.19 mg per deciliter and 0.01 ± 0.17 mg per deciliter in the placebo group from baseline to 2 weeks (between-group difference, 0.07 mg per deciliter; 95% CI, 2 The change in eGFR per 1000 mg / kg was also measured and is shown in Figures 15 and 16.
[0214] [Table 5]
[0215] safety Prespecified safety endpoints of particular interest are listed in Table 2. Five patients assigned to dapagliflozin and three assigned to placebo did not receive study drug and were therefore excluded from the safety analysis. In the dapagliflozin group, 178 patients (7.5%) had adverse events related to volume depletion compared with 162 patients (6.8%) assigned to placebo (P = 0.40). Serious adverse events related to volume depletion occurred in 29 dapagliflozin-treated patients (1.2%) and 40 patients (1.7%) in the placebo group (P = 0.23).
[0216] Adverse events related to renal dysfunction occurred in 153 patients (6.5%) in the dapagliflozin group versus 170 patients (7.2%) (P = 0.36) (Table 2). Serious renal adverse events occurred in 38 dapagliflozin-treated patients (1.6%) and 65 patients (2.7%) in the placebo group (P = 0.009).
[0217] Adverse events requiring treatment discontinuation were rare (Table 2). Lower-limb amputations and fractures occurred only rarely, and the incidence of each was similar in the two treatment groups (Table 2). Life-threatening hypoglycemia (4 patients in the dapagliflozin group and 4 in the placebo group) and diabetic ketoacidosis (3 vs. 0) were also rare (Table 2). There were no cases of Fournier's gangrene in the dapagliflozin group, compared with 1 reported in the placebo group. There was no significant excess of any serious adverse event (SAE) in the dapagliflozin group.
[0218] Essay In this multicenter, randomized, placebo-controlled trial of patients with chronic heart failure with reduced left ventricular ejection fraction, dapagliflozin reduced the risk of the primary composite endpoint of a first episode of worsening heart failure (heart failure hospitalization or emergency heart failure outpatient visit requiring intravenous therapy) or death from cardiovascular causes. Each of the three components of this endpoint was reduced, as were the combined number of heart failure hospitalizations and cardiovascular deaths. Dapagliflozin also improved heart failure symptoms, as measured by the Kansas City Cardiomyopathy Questionnaire (KCCQ) total symptom score. The observed benefits, which were substantial and clinically important, occurred early after randomization and were achieved in participants receiving recommended background therapy for heart failure, including renin-angiotensin system blockers, beta-blockers, and mineralocorticoid receptor antagonists in a high proportion of patients.
[0219] Notably, dapagliflozin was effective in 55 percent of patients without type 2 diabetes, as well as in participants with diabetes. This first demonstration of the cardiovascular benefits of an SGLT2 inhibitor in patients without diabetes lends support to previous suggestions that this type of treatment may have beneficial effects beyond blood glucose lowering. 4~11 Thus, insights gained from DAPA-HF may potentially extend the therapeutic role of dapagliflozin beyond diabetes.
[0220] The reduction in the primary endpoint was generally consistent across the remaining prespecified subgroups, although one subgroup showed a smaller benefit in patients with NYHA functional class III and IV compared with class II, suggesting that the treatment effect may be heterogeneous. However, other subgroups, also exhibiting more advanced disease, such as lower ejection fraction, worsening renal function, and higher NT-proBNP, were not consistent with the NYHA class findings.
[0221] The population studied in the DAPA-HF trial differed significantly from previous SGLT2 inhibitor trials in that DAPA-HF patients were at much higher risk of heart failure hospitalization and cardiovascular death. Because most patients were already treated with loop diuretics and mineralocorticoid receptor antagonists, it was unclear whether dapagliflozin would produce the expected initial natriuresis and diuresis observed in other patient groups. These effects could potentially lead to volume depletion and worsening renal function, especially since many of these patients had chronic kidney disease. Neither of these two adverse effects was common (occurring in less than 8% of patients in each treatment group), and serious renal adverse events were generally rare and significantly less frequent in the dapagliflozin group. Overall, very few patients discontinued study treatment due to either adverse event (less than 5% in either treatment group). Life-threatening hypoglycemia, as well as diabetic ketoacidosis, were rare, and all cases of both adverse events occurred in patients with coexisting diabetes.
[0222] Baseline use of sacubitril-valsartan, which is more effective than renin-angiotensin system blockade alone in reducing heart failure hospitalizations and death from cardiovascular causes, was low. 18 However, the hypothesized mechanisms of action of SGLT2 inhibition and neprilysin inhibition are different, and in post hoc subgroup analyses, the benefit of dapagliflozin was similar in patients treated with and without sacubitril-valsartan. 19、20
[0223] In conclusion, the SGLT2 inhibitor dapagliflozin reduced the risk of worsening heart failure and cardiovascular death and improved symptoms in patients with heart failure and low ejection fraction, including those without type 2 diabetes.
[0224] References : 1Zinman B.et al.,“Empagliflozin,Cardiovascular Outcomes,and Mortality in Type 2 Diabetes,”N Engl J Med.373(22):2117-2128(2015). 2 Neal B.et al.,“Canagliflozin and Cardiovascular and Renal Events in Type 2 Diabetes,”N Engl J Med.377(7):644-657(2017). 3 Wiviott S.D.et al.,“Dapagliflozin and Cardiovascular Outcomes in Type 2 Diabetes,N Engl J Med.380:347-357(2019). 4 Perkovic V.et al.,Canagliflozin and Renal Outcomes in Type 2 Diabetes and Nephropathy,N Engl J Med.380:2295-2306(2019). 5 Packer M.et al.,“Effects of Sodium-Glucose Cotransporter 2 Inhibitors for the Treatment of Patients With Heart Failure:Proposal of a Novel Mechanism of Action,”JAMA Cardiol.2(9):1025-1029(2017). 6 Verma S.and McMurray J.J.V.,“SGLT2 inhibitors and mechanisms of cardiovascular benefit:a state-of-the-art review,”Diabetologia 61(10):2108-2117(2018). 7Inzucchi S.E.et al.,“Improvement in Cardiovascular Outcomes With Empagliflozin Is Independent of Glycemic Control,”Circulation 138(17):1904-1907(2018). 8 Lytvyn Y.et al.,“Sodium Glucose Cotransporter-2 Inhibition in Heart Failure:Potential Mechanisms,Clinical Applications,and Summary of Clinical Trials,”Circulation 136(17):1643-1658(2017). 9 Bonnet F.and Scheen A.J.,“Effects of SGLT2 inhibitors on systemic and tissue low-grade inflammation:The potential contribution to diabetes complications and cardiovascular disease,”Diabetes Metab.44:457-464(2018). 10 Wanner C.et al.,“Empagliflozin and Progression of Kidney Disease in Type 2 Diabetes,”N Engl J Med.375:323-334(2016). 11 Zelniker T.A.et al.,“SGLT2 inhibitors for primary and secondary prevention of cardiovascular and renal outcomes in type 2 diabetes:a systematic review and meta-analysis of cardiovascular outcome trials,”Lancet 393:31-39(2019). 12 McMurray J.J.V.et al.,“DAPA-HF design paper - A trial to evaluate the effect of the sodium glucose co-transporter 2 inhibitor dapagliflozin on morbidity and mortality in patients with heart failure and reduced left ventricular ejection fraction(DAPA-HF),Eur J Heart Fail.21:665-675(2019). 13 McMurray J.J.V.et al.,“The Dapagliflozin and Prevention of Adverse-Outcomes in Heart Failure(DAPA-HF) trial:baseline characteristics,”Eur J Heart Fail.,doi:10.1002 / ejhf.1548.[Epub ahead of print](2019 Jul 15). 14 Hicks K.A.et al.,“Standardized Data Collection for Cardiovascular Trials Initiative(SCTI)2017 Cardiovascular and Stroke Endpoint Definitions for Clinical Trials,”Circulation 137:961-972(2018). 15 Green C.P.,“Development and evaluation of the Kansas City Cardiomyopathy Questionnaire:a new health status measure for heart failure,”J Am Coll Cardiol.35:1245-1255(2000). 16Lin DYet al., “Semiparametric regression for the mean and rate functions of recurrent events,” JR Stat Soc Series B Stat Methodol 62:711-730(2000). 17 Wang D. and Pocock S., “A win ratio approach to comparing continuous non-normal outcomes in clinical trials.” Pharm Stat.15:238-245(2016). 18 McMurray JJet al., “Angiotensin-neprilysin inhibition versus enalapril in heart failure,” N Engl J Med.371:993-1004 (2014). 19 McMurray JJ, “Neprilysin inhibition to treat heart failure: a tale of science, serendipity, and second chances,” Eur J Heart Fail.17:242-247 (2015). 20 Packer M.,”Reconceptualization of the Molecular Mechanism by Which Sodium-Glucose Cotransporter 2 Inhibitors Reduce the Risk of Heart Failure Events,”Circulation 140:443-445(2019).
[0225] Example 2 DAPA-HF Phase III Clinical Trial Results - Effect of Dapagliflozin on HF Symptoms, Health Status, and Quality of Life Introduction Patients with HF and HFrEF are at high risk for disease progression, resulting in clinical deterioration, repeated hospitalizations, and death. Bui, AL et al., Nat Rev Cardiol 8:30-41 (2011). Importantly, these patients also experience a high burden of debilitating symptoms, which impact their daily functioning and quality of life. Indeed, some therapeutic agents for HFrEF that have favorable effects on mortality and hospitalization do not improve health status (Reddy, P. and Dunn, A.B., Pharmacotherapy 20:679-689 (2000)), highlighting the high unmet need for alternative effective therapies that not only improve clinical events but also reduce symptom burden and physical limitations, and improve quality of life. Indeed, improving patient health status is a major goal of heart failure management and is increasingly recognized by clinical practice guidelines (Tsevat, J. et al., J Gen Intern Med. 9:576-582 (1994); Lewis, E.F. et al., J Heart Lung Transplant 20:1016-1024 (2001)) and is recognized as an important endpoint by regulatory agencies. US FDA, "Treatment for Heart Failure: Endpoints for Drug Development Guidance for Industry,”https: / / wwwfdagov / regulatory-information / search-fda-guidance-documents / treatment-heart-failure-endpoints-drug-development-guidance-industry(2019).
[0226] In the DAPA-HF trial described in Example 1, the SGLT2 inhibitor dapagliflozin, added to other guideline-recommended therapies, reduced the risk of mortality and HF hospitalization and improved symptoms in 4,744 patients with HFrEF. See also McMurray, JJV et al., N Engl J Med, doi:10.1056 / NEJMoa1911303 [Epub ahead of print] (2019 Sep 19); McMurray, JJV et al., Eur J Heart Fail 21:665-675 (2019); McMurray JJV et al., Eur J Heart Fail., doi:10.1002 / ejhf.1548 [Epub ahead of print] (2019 Jul 15) (incorporated by reference in their entireties). To better understand the effects of dapagliflozin on a broad range of health status outcomes, we examined its effects on various domains of the KCCQ, an approved self-administered instrument that quantifies heart failure-related symptoms, function, and quality of life.
[0227] method The design, baseline characteristics of study patients, and primary outcomes of the DAPA-HF trial were as described in Example 1 and McMurray, JJV et al., N Engl J Med, doi:10.1056 / NEJMoa1911303 [Epub ahead of print] (2019 Sep 19); McMurray, JJV et al., Eur J Heart Fail 21:665-675 (2019); and McMurray JJV et al., Eur J Heart Fail., doi:10.1002 / ejhf.1548 [Epub ahead of print] (2019 Jul 15). The primary endpoint of the DAPA-HF trial was a composite of episodes of worsening heart failure (HF hospitalization or emergency HF outpatient visit) or cardiovascular (CV) death (whichever occurred first). Other clinical endpoints evaluated were the occurrence of HF hospitalization or CV death; HF worsening events (HF hospitalization or emergency HF outpatient visit), hospitalization for HF, cardiovascular death, and all-cause death.
[0228] Kansas City Cardiomyopathy Questionnaire The KCCQ was completed electronically (as validated) by patients without assistance from local study staff and assessed at randomization, 4 months, and 8 months. The KCCQ is a 23-item, self-administered, disease-specific instrument that quantifies symptoms (frequency, severity, and recent change) over the past 2 weeks, physical function, quality of life, and social function. In the KCCQ, the Total Symptom Score (TSS) quantifies symptom frequency and severity, the KCCQ Clinical Summary Score (KCCQ-CSS) includes physical function and symptom domains, and the KCCQ Overall Summary Score (OSS) is derived from the following domains: total symptom score, physical function, quality of life, and social function. Validity, reproducibility, responsiveness, and interpretability have been independently established for each domain. Scores are converted to a range of 0 to 100, with higher scores representing better health status.
[0229] statistical analysis In this trial, patients were divided into three subgroups based on baseline KCCQ-TSS tertiles (which was a prespecified KCCQ domain as a secondary endpoint): (i) ≤65.6, (ii) 65.7–87.5, and (iii) >87.5 points. Baseline characteristics were summarized as means and standard deviations, medians and interquartile ranges, or percentages. CV mortality and HF worsening rates (independent of treatment allocation) across KCCQ-TSS tertiles were calculated and compared using Kaplan-Meier estimates.
[0230] To compare the effects of dapagliflozin versus placebo on clinical endpoints across KCCQ-TSS tertiles, we evaluated time-to-event data using Kaplan-Meier estimates and calculated hazard ratios, 95% confidence intervals, and two-sided P values using Cox proportional hazards models, stratified by diabetes status, with history of HF hospitalization and treatment group assignment as fixed-effect factors.
[0231] A mixed model for repeated measures was used to analyze the differences between treatment groups in mean KCCQ-TSS, CSS, and OSS at 4 and 8 months in surviving patients, and least-squares mean differences between treatment groups adjusted for baseline values were estimated. Responder analyses were performed examining the proportion of patients with worsening and clinically important improvements in the KCCQ at 8 months. For all responder analyses across this KCCQ domain, established clinically important thresholds for the KCCQ (≥ 5-point (at least small), ≥ 10-point (moderate), and ≥ 15-point (large) change) were used. To account for missing KCCQ values, multiple imputation was used to compare the proportion of responders between patients treated with dapagliflozin versus placebo (see below).
[0232] Odds ratios and their corresponding 95% confidence intervals and two-sided P values for estimating differences between treatment groups were estimated from logistic regression models (including treatment group, stratification variable (T2D at randomization), and baseline KCCQ score); these models used imputed data to account for missing KCCQ scores and fitted estimates using Rubin's rule. Missing data were imputed using random missingness assumptions and predictive mean-matching multiple imputation models and the method of fully conditional specification implemented in SAS Procedure MI (FCS statement). The imputation model included categorical variables representing treatment group, type 2 diabetes randomization strata, baseline, 4-month, and 8-month KCCQ scores, and the number of investigator-reported HF events (0, 1, ≥2 events) in the intervals from randomization to 4 months and 4 to 8 months. Deaths were handled by assigning the lowest value. Patients with baseline KCCQ scores that were too high to experience improvement according to a particular threshold (e.g., a baseline score of ≥ 95 points for a 5-point threshold) were defined as improved if their scores remained high (i.e., ≥ 95 points) at 8 months. Similarly, patients with baseline KCCQ scores that were too low to experience deterioration were defined as worsened if their scores remained low at 8 months. All analyses were performed using STATA version 15.1 (College Station, TX, USA) and SAS version 9.4 (SAS Institute, Cary, NC, USA). A P value of 0.05 was considered statistically significant.
[0233] result Overall, 4744 patients were randomized. Baseline KCCQ TSS was available for 4443 (93.7%) patients. The median KCCQ TSS was 77.1 (IQR 58.3-91.7). The number and percentage of patients in KCCQ TSS tertiles are shown in Table 4.
[0234] [Table 6]
[0235] [Table 7]
[0236] Patient characteristics Compared with participants with higher baseline KCCQ-TSS scores, participants with lower scores were younger, more frequently female, Caucasian, and enrolled in Europe and the Americas. These participants also had higher body mass index and natriuretic peptide levels; lower eGFR (Table 4); and were more likely to be in NYHA functional class III / IV and to have type 2 diabetes and atrial fibrillation than class II. Regarding basal HF therapy, patients with lower baseline KCCQ-TSS scores were more frequently treated with mineralocorticoid receptor antagonists (MRAs) and diuretics. Baseline use of angiotensin receptor neprilysin inhibitors (ARNIs) was generally low but similar across age groups. The proportion of patients treated with implantable cardiac devices was generally comparable across KCCQ-TSS subgroups.
[0237] Clinical endpoints Patients with lower baseline KCCQ-TSS experienced higher rates of CV mortality or HF worsening (25.0%, 17.3%, and 13.6% for patients across KCCQ-TSS tertiles of ≤65.6, 65.7–87.5, and >87.5, respectively; p<0.001). In a Cox proportional hazards model, patients with lower baseline KCCQ-TSS had a higher risk of CV mortality or HF worsening (tertile >87.5: referent; tertile 65.7–87.5: HR 1.30 (95% CI: 1.08–1.56), p=0.006; tertile ≤65.6: HR 1.93 (95% CI: 1.62–2.30), p<0.001; Figure 5).
[0238] The effect of dapagliflozin on a range of clinical endpoints is summarized in Figure 6. Dapagliflozin reduced the primary endpoint of CV death or worsening HF across the entire range of KKCQ-TSS scores, and there was no evidence of treatment effect heterogeneity (HR (95% CI) from lowest to highest tertile: 0.70 (0.57-0.86), 0.77 (0.61-0.98), and 0.62 (0.46-0.83), respectively; P for heterogeneity = 0.52). Similar results were observed for CV death or hospitalization for HF; worsening HF events; HF hospitalization; CV death; and all-cause mortality (Figure 6; all P values for heterogeneity were non-significant).
[0239] Health status evaluation items The mean changes in KCCQ-TSS, CSS, and OSS over time are shown in Figures 7A, 7B, and 7C, respectively. Patients treated with dapagliflozin had modest but significant improvements in mean KCCQ-TSS, CSS, and OSS at 4 months (1.9, 1.8, and 1.7 points higher than placebo, respectively; P<0.0001 for all). These beneficial effects amplified over time, with corresponding mean differences at 8 months being 2.8, 2.5, and 2.3 points higher for dapagliflozin versus placebo (P<0.0001 for all).
[0240] The results of the responder analysis are shown in Figures 8A-8F. Fewer patients treated with dapagliflozin had a clinically beneficial worsening (≥ 5-point decline in KCCQ-TSS (25.3% vs. 32.9%; OR 0.84, 95% CI 0.01-0.02)). More patients treated with dapagliflozin had at least small (58.3% vs. 50.9%), moderate (54.5% vs. 47.6%), and large (54.0% vs. 48.2%) improvements (corresponding odds ratios (OR), 95% CI: 1.15 (1.08–1.23); 1.15 (1.08–1.22); 1.14 (1.07–1.22); number needed to treat (NNT) = 14 (10–23), 15 (11–25), and 18 (12–35), respectively; P < 0.0001 for all; Figures 8A–8B). These findings were similar for the KCCQ-CSS and OSS (Figures 8C–8F).
[0241] Essay In this prospective study evaluating prespecified health status outcomes using the KCCQ in the DAPA-HF trial, dapagliflozin treatment reduced the risk of all major clinical events, including the primary composite endpoint of CV death or worsening HF and its components, to a similar extent across the entire range of the baseline KCCQ, indicating that the beneficial effects of dapagliflozin on HF outcomes are independent of baseline health status impairment. Furthermore, dapagliflozin significantly improved the KCCQ-TSS, CSS, and OSS (a composite of disability, physical function, quality of life, and social function), and these effects amplified over time. Finally, significantly fewer patients treated with dapagliflozin experienced clinically significant deterioration, and significantly more experienced at least small, moderate, and large clinically significant improvements in health status. These effects were substantial, with the number needed to treat ranging from 12 to 18 after only 8 months of treatment.
[0242] These results have several important implications. First, analysis of clinical endpoints across baseline KCCQ-TSS subgroups shows no evidence of heterogeneity in the benefit of dapagliflozin by grade of baseline symptomatic impairment. A previously reported prespecified subgroup analysis of the primary endpoint (CV death or worsening HF) suggested that the benefit of dapagliflozin may be more pronounced in patients with NYHA functional class II compared with classes III-IV. However, NYHA class, while prognostically important, represents a more subjective, arbitrary, and non-patient-centered assessment of symptom burden; given this report, the observations from the previous NYHA class subgroup analysis were likely opportunistic.
[0243] Second, the findings substantially expand on previously reported effects of dapagliflozin on health status, as measured by the KCCQ, in patients with HFrEF. In the Dapagliflozin Effect on Biomarkers, Symptoms, and Functional Status in Patients with Heart Failure with Reduced Ejection Fraction (DEFINE-HF) trial, a modestly sized, randomized, placebo-controlled trial conducted at 26 centers in the United States, dapagliflozin also demonstrated favorable effects on several domains of the KCCQ; although the mean difference for dapagliflozin versus placebo was somewhat larger than that observed in the DAPA-HF trial, responder analyses and numbers needed to treat were comparable after only 12 weeks of treatment. (Nassif, ME et al., Circulation 140:1463-1476 (September 2019)) These findings confirm the aforementioned beneficial effects on symptoms, function, and quality of life in a much larger global trial with a longer follow-up period. Overall, findings from both the DEFINE-HF and DAPA-HF trials indicate that dapagliflozin significantly improves heart failure-related health status, as measured by the KCCQ, and that these benefits are both early and sustained over the long term.
[0244] Third, the magnitude of improvement in the KCCQ observed with dapagliflozin versus placebo in the DAPA-HF trial compares favorably with other effective therapies for HFrEF. For example, in the Systolic Heart Failure Treatment with the If Inhibitor Ivabradine Trial (SHIFT), ivabradine demonstrated a mean improvement in the KCCQ-OSS score of 2.4 points and a mean improvement in the KCCQ-CSS score of 1.8 points after 12 months of treatment. (Ekman, I. et al., Eur Heart J 32:2395-2404 (2011)). In the PARADIGM-HF trial, Lewis, EF et al., Circ Heart Fail. 10: doi:10.1161 / CIRCHEARTFAILURE.116.003430 (2017), sacubitril / valsartan demonstrated a 1.3-point and 0.9-point improvement in the KCCQ-OS and KCCQ-CS scores, respectively, compared with enalapril after 8 months of treatment. In HF-ACTION, Flynn, KE et al., JAMA 301:1451-1459 (2009), exercise therapy for HFrEF resulted in a 1.9-point improvement in the KCCQ-OSS score. In the MADIT-CRT trial of cardiac resynchronization therapy (CRT) in patients with HFrEF and QRS widening (Veazie, PJ et al., J Am Coll Cardiol. 60:1940-1944 (2012)), CRT treatment resulted in improvements of 2.0, 2.0, and 2.4 points in the KCCQ-TSS, CSS, and OSS scores, respectively, in patients with left bundle branch block (LBBB), while there was no significant improvement in the KCCQ score in patients without LBBB. Although responder analyses have been performed only sparingly to date, the magnitude of benefit observed with dapagliflozin in the responder analysis of DAPA-HF (e.g., number of treatments required) compared favorably with previously observed results. (Ekman, I. et al., Eur Heart J 32:2395-2404 (2011)). The time needed to treat for clinically important improvement on the KCCQ is based on a comparison of dapagliflozin- and placebo-treated patients (who also experienced improvements in health status consistent with a sizable "placebo effect" observed in both our trial and the DEFINE-HF trial).Therefore, the magnitude of dapagliflozin's effect on health status in clinical practice (obviously without the use of placebo) may be greater than that observed. Given the reduction in symptom burden and physical limitations and improved quality of life (primary goals of HF management endorsed by clinical guidelines and regulatory agencies), our findings provide further support for dapagliflozin as a new treatment option for patients with HFrEF.
[0245] conclusion In the DAPA-HF trial, treatment with dapagliflozin reduced death and heart failure hospitalization across a range of baseline KCCQ values, while improving symptom burden, functional status, and quality of life in patients with HFrEF. Furthermore, dapagliflozin significantly increased the proportion of patients experiencing small, moderate, and large improvements in health status; these effects were sustained and clinically important.
[0246] Example 3 DAPA-HF Phase III Clinical Trial Results: Effects of Dapagliflozin on Clinical, Metabolic, Hemodynamic, and Renal Outcomes in Patients with and without Diabetes Mellitus Introduction As described in Example 1, in the DAPA-HF trial, SGLT2 inhibition resulted in similar reductions in the primary endpoint of worsening HF events or cardiovascular death in HF patients with and without diabetes. See also McMurray, JJV et al., Eur J Heart Fail 21:665-675 (2019); McMurray, JJV et al., N Engl J Med doi:10.1056 / NEJMoa1911303 [Epub ahead of print] (2019 Sep 19) (incorporated herein by reference in its entirety). The prespecified analyses described in this example describe the efficacy and safety of dapagliflozin, along with metabolic and hemodynamic changes, in HF patients across a range of baseline glycated hemoglobin (also known as hemoglobin A1c or HbA1c) in DAPA-HF.
[0247] method Eligibility requirements, baseline characteristics, and exclusion criteria for DAPA-HF study patients were as described in Example 1 and McMurray, JJV et al., Eur J Heart Fail 21:665-675 (2019); McMurray, JJV et al., N Engl J Med doi:10.1056 / NEJMoa1911303 [Epub ahead of print] (2019 Sep 19). Study procedures, study endpoints, and statistical analyses were also as described in Example 1 and McMurray, JJV et al., Eur J Heart Fail 21:665-675 (2019); McMurray, JJV et al., N Engl J Med doi:10.1056 / NEJMoa1911303 [Epub ahead of print] (2019 Sep 19).
[0248] Baseline classification of diabetes status The investigator recorded whether patients had a history of diabetes at the enrollment visit (Visit 1). Patients also had central laboratory measurements of glycated hemoglobin (HbAlc) levels at Visit 1 and again 14 (±7) days later at Visit 2 (randomization visit). For this prespecified subgroup analysis, patients were classified as having diabetes if they had a history of diabetes or had a glycated hemoglobin of at least 6.5% (≥48 mmol / mol) at both Visits 1 and 2. Patients with glycated hemoglobin levels <5.7% (<39 mmol / mol) at both Visits 1 and 2 were considered to have normal glycated hemoglobin. For the purposes of this study, patients with glycated hemoglobin levels ≥5.7% and <6.5% were considered to have prediabetes. Ibid.
[0249] result patient Baseline glycemic status Of the 4,744 patients enrolled, 2605 (55%) did not have diabetes. Of the remaining, 1983 (41.8%) had a history of diabetes at screening, and an additional 156 (3.3%) were found to have previously undiagnosed diabetes, i.e., glycated hemoglobin ≥ 6.5% at Visit 1 (enrollment) and Visit 2 (randomization). Of the 2605 patients without diabetes, 1748 (67.1%) had a glycated hemoglobin value ≥ 5.7% at either Visit 1 or 2, and 839 patients (32.2%) had a glycated hemoglobin value < 5.7% at both Visits 1 and 2. In addition, 12 patients had only a single glycated hemoglobin measurement < 5.7%, and 6 patients were missing both baseline glycated hemoglobin measurements (these 18 were included in the normal hemoglobin group).
[0250] Patient characteristics according to baseline glycemic status Baseline characteristics of patients with and without diabetes are shown in Table 5 and were well balanced between patients assigned to dapagliflozin or placebo within each group (Table 6). Patients without diabetes were less likely to be black and less likely to have an ischemic etiology than patients with diabetes (Table 5). Mean body mass index, heart rate, systolic blood pressure, and NT-proBNP levels were lower in participants without diabetes compared with those with diabetes. Mean eGFR was higher in participants without diabetes compared with those with diabetes. The mean glycated hemoglobin level in patients without diabetes was 5.8% compared with 7.4% in patients with diabetes. The mean duration of diabetes was 7.41 years (IQR 2.75, 13.5).
[0251] At baseline, both NYHA functional class and KCCQ-TSS were superior in patients without diabetes compared with patients with diabetes.
[0252] [Table 8]
[0253] [Table 9]
[0254] [Table 10]
[0255] [Table 11]
[0256] [Table 12]
[0257] [Table 13]
[0258] [Table 14]
[0259] Evaluation items Baseline glycemic status endpoints Patients without diabetes had lower prespecified mortality and worsening HF rates (Table 7, Figures 9A-9D, and Figure 10A). Among patients without diabetes, endpoint rates were highest in those in the upper third of baseline glycated hemoglobin (≥6.0%), i.e., individuals with prediabetes (Figure 10A). The risk of the renal composite endpoint was also lower in participants without diabetes (Figure 14). In contrast, the overall change from baseline in KCCQ-TSS did not differ between patients with or without diabetes.
[0260] [Table 15]
[0261] [Table 16]
[0262] Effect of dapagliflozin versus placebo according to baseline glycemic status The effects of dapagliflozin on the primary composite endpoint and on individual mortality and hospitalization endpoints, as well as emergency department visits due to worsening heart failure requiring intravenous therapy, are shown in Table 7 and Figure 10B. The effect of dapagliflozin on each endpoint was similar in patients with and without diabetes, as was the effect of the study drug on the renal composite endpoint.
[0263] Among patients without baseline diabetes, the effect of dapagliflozin on the primary endpoint was consistent across the range of glycated hemoglobin levels when divided into three equal groups (Figure 10A). Specifically, for patients in the lower third (glycated hemoglobin levels ≤ 5.6%), the dapagliflozin-to-placebo hazard ratio was 0.74 (95% CI 0.53, 1.04), compared with 0.71 (0.48, 1.04) for those in the middle third (> 5.6 to < 6.0%) and 0.72 (0.52, 1.00) for those in the upper third (≥ 6.0%); P interaction = 0.837. A separate analysis using glycated hemoglobin as a continuous variable demonstrated the benefit of dapagliflozin across the included range (Figures 12A–12D).
[0264] From baseline to 8 months, KCCQ-TSS scores increased by 2.2 (95% CI 0.7 to 3.7) points with dapagliflozin compared with placebo in patients without diabetes and by 3.5 (95% CI 1.6 to 5.4) points in patients with diabetes; P interaction = 0.176 (Table 7).
[0265] In individuals without diabetes, more patients in the dapagliflozin group than in the placebo group self-reported an increase of at least 5 points on the KCCQ-TSS (57.7% vs. 51.7%; odds ratio 1.12 (95% CI 1.03, 1.22)), and fewer patients reported a significant worsening (26.0% vs. 31.3%; odds ratio 0.88 (0.81, 0.97); P<0.01 for both comparisons). In individuals with diabetes, the corresponding rates were as follows: ≥5-point improvement - 58.9% vs. 49.9%; odds ratio 1.20 (1.09, 1.31); and worsening - 24.5% vs. 34.8%; odds ratio 0.78 (0.71, 0.87); P<0.001 for both comparisons (P=0.294 for exchange for improvement and P=0.075 for exchange for worsening).
[0266] Among individuals without diabetes, 157 developed T2D during the study, of whom 150 (95.5%) had prediabetes (AIc 5.7-6.4%) (136 [86.6%] using the more restrictive 6.0-6.4% criteria). Patients who developed T2D had a higher baseline AIc (6.2±0.3 vs. 5.7±0.4%; p<0.001) and a higher BMI (28.5±5.9 vs. 27.1±5.7 kg / m²) than those who remained diabetes-free. 2 ; p = 0.003) and lower eGFR (61.5 ± 17.4 vs. 68.2 ± 19.3 ml / min / 1.73 m 2 ; p<0.001). Dapagliflozin reduced new-onset diabetes by 32%: placebo 93 / 1307 (7.1%) vs. dapagliflozin 64 / 1298 (4.9%); HR 0.68 (95% CI, 0.50-0.94; p=0.019) (Cox.) (Figure 17).
[0267] Clinical laboratory measurements, weight and blood pressure Figures 11A–11E show changes in clinical laboratory measurements, weight, and blood pressure, adjusted for baseline values. Glycated hemoglobin remained largely unchanged in patients without diabetes, whereas there was a slight decrease by day 60 in patients with diabetes (P exchange effect <0.0001) (Figure 11A). Weight and systolic blood pressure decreased in both patient groups (Figures 11B and 11C, respectively). Hematocrit increased with dapagliflozin in both patient groups, reaching a plateau after approximately 4 months; this increase was lower in patients without diabetes than in patients with diabetes (P exchange effect = 0.0002) (Figure 11D). There was a slight initial increase in creatinine with dapagliflozin in both groups, although the difference between treatments attenuated by 6 months; this increase was lower in patients without diabetes than in patients with diabetes (P exchange effect = 0.0005) (Figure 11E).
[0268] N-terminal pro-B-type natriuretic peptide In patients without diabetes, NT-proBNP decreased by 144 ± 2286 pg / ml from baseline to 8 months in the dapagliflozin group and increased by 84 ± 2993 pg / ml in the placebo group; treatment difference: -278 (-485 to -71) pg / ml; p=0.009. In participants with diabetes, the corresponding changes were a decrease of 257 ± 2502 pg / ml in the dapagliflozin group and an increase of 121 ± 2884 pg / ml in the placebo group; treatment difference: -333 (-562 to -104) pg / ml; p=0.004 (P exchange effect=0.728).
[0269] Tolerability and safety Among patients without diabetes, 144 patients (11.1%) in the dapagliflozin group and 141 patients (10.8%) in the placebo group discontinued the study drug. Among patients with diabetes, these numbers were 105 (9.8%) and 117 (11.0%), respectively.
[0270] The most common adverse events of note were volume depletion and nephropathy, which were less common in patients without diabetes than in those with diabetes (Table 8). The incidence of these adverse events did not differ between dapagliflozin and placebo in either patient group.
[0271] [Table 17]
[0272] [Table 18]
[0273] A doubling of serum creatinine occurred in 22 patients (1.7%) without diabetes assigned to dapagliflozin and in 36 patients (2.8%) assigned to placebo, p=0.08; the corresponding numbers in patients with diabetes were 21 (2.0%) and 41 (3.9%), p=0.01.
[0274] Three patients (0.06%) experienced definite or probable diabetic ketoacidosis during the trial, all of whom were diabetic patients randomized to dapagliflozin. Eight patients (0.17%) experienced life-threatening hypoglycemia during the trial, all of whom had diabetes: four randomized to dapagliflozin and four randomized to placebo. Overall, 25 patients (0.53%) underwent amputation; among those without diabetes, one was in the dapagliflozin group and three in the placebo group; among those with diabetes, 12 patients were in the dapagliflozin group and nine in the placebo group.
[0275] Essay A key finding from this analysis of patients with HF and low ejection fraction was that the SGLT2 inhibitor dapagliflozin improved all prespecified mortality and hospitalization outcomes to a similar extent in people with and without diabetes. Furthermore, among individuals without diabetes, the reduction in the primary outcome with dapagliflozin was consistent across a range of baseline glycated hemoglobin levels, whether assessed as a categorical or continuous measure. Indeed, coincidentally, in the tertile analysis of participants without diabetes, quartiles were selected that reflected the US (≥ 5.6%) and European (≥ 6.0%) definitions of prediabetes based on glycated hemoglobin criteria. (American Diabetes Association. 2. Classification and Diagnosis of Diabetes: Standards of Medical Care in Diabetes-2019, Diabetes Care 42(Suppl 1):S13-S28(2019); Chatterton, H. et al., BMJ 345:e4624(2012)). The benefit of dapagliflozin was similar in individuals with prediabetes diagnosed using either definition and in individuals with normal glycosylated hemoglobin. This data provides convincing evidence that the benefit of SGLT2 inhibition is not limited to people with diabetes or prediabetes, but is also applicable to patients with heart failure and low ejection fraction, regardless of glycemic status. Furthermore, the observed benefit is also observed in participants already receiving recommended therapies for HF, including renin-angiotensin system blockers, beta-blockers, and mineralocorticoid receptor antagonists.
[0276] This analysis also demonstrates the effects of dapagliflozin on metabolic, hemodynamic, and anthropometric measures in people with and without diabetes. As expected, dapagliflozin reduced glycated hemoglobin in patients with type 2 diabetes but had no effect on this measure in people without diabetes. However, the effects of dapagliflozin on weight, blood pressure, hematocrit, creatinine, and NT-proBNP were directionally similar in people with and without diabetes, although the effects were somewhat more pronounced in the former group.
[0277] Based on the findings of this study, it can be inferred that the benefit of dapagliflozin was independent of plasma glucose lowering. Other mechanisms of action of SGLT2 inhibitors have been proposed, including diuretic effects. (Hallow, K. et al., Diabetes Obes Metab 20 479-487 (2018); McMurray, J., J Diabetes Complications 30:3-4 (2016)). Although this mechanism was not directly measured in this study, the early reductions in systolic blood pressure and weight, as well as increases in creatinine, were consistent with a diuretic effect. However, little is known about the effects of SGLT2 inhibitors on urinary sodium and water excretion when added to conventional diuretic therapy, particularly in patients with HF, especially those without diabetes. (Hallow, K. M. et al., supra; Devineni, D. et al., Clin Ther 36:698-710 (2014); Nassif, M. E. et al., Circulation (Sep 2019); Kosiborod, M. et al., J Diabetes Complications 31:1215-1221 (2017)). There are other possible explanations for the increase in creatinine and hematocrit. SGLT2 inhibitors are thought to induce tubuloglomerular feedback, independent of diuresis, which promotes constriction of afferent arterioles and a decrease in glomerular filtration rate. (Heerspink, H. et al., Circulation 134:752-72(2016); Kidokoro, K. et al., Circulation 140:303-315(2019)). Similarly, the increase in hematocrit is thought to be due to increased renal erythropoietin secretion due to SGLT2 inhibitor-mediated improvement in renal function. (Yanai, H. et al., J Clin Med Res 9:178-179(2017)). The time courses of creatinine and hematocrit observed by the inventors were quite different: the initial increase in creatinine reversed after 14 days, whereas hematocrit gradually increased for the first 4 months and then plateaued. Diuretic volume contraction is unlikely to explain these diverse changes.
[0278] Other diuretic-independent effects have been proposed, such as effects on ion transporters, fibrosis, adipokines, sympathetic nervous system activity, and vascular function, but supporting clinical evidence is scarce. (Thomas,MC et al.,Diabetologia 61:2098-2107(2018); Garg,V.et al.Prog Cardiovasc Dis pii:S0033-0620(19)30102-1(2019); Wojcik,C.et al.,Curr Cardiol Rep 21:130(2019); Verma S.et al.,Diabetologia 61:2108-2117(2018). Some data suggest that SGLT2 inhibitors may reduce left ventricular volume, and an effect on cardiac remodeling may explain the observed decrease in NT-proBNP with dapagliflozin. (Verma,S.et al.,Circulation(2019) Aug. 22). Recent experimental studies have also demonstrated the benefits of SGLT2 inhibitors on cardiac structure and function in non-diabetic animals (Thomas, MC et al., Diabetologia 61:2098-2107 (2018); Yurista, SR et al., Eur J Heart Fail 21:862-873 (2019); Garg, V. et al., Prog Cardiovasc Dis pii:S0033-0620(19)30102-1 (2019)). Prevention of renal dysfunction may also be beneficial in heart failure.
[0279] The overall rates of other important adverse events of note, related to heart failure and volume depletion, were low and similar in participants with and without diabetes. This finding is consistent with the notion that diuresis may not be the primary mechanism underlying dapagliflozin's beneficial effects. Other prespecified safety endpoints were rare in both patient groups, and study drug discontinuations were rare in both groups. Neither life-threatening hypoglycemia nor diabetic ketoacidosis occurred in patients without diabetes. No significant effects on our prespecified renal endpoints were evident, although this did not occur in most patients. However, doubling of serum creatinine was found to be significantly less in patients receiving dapagliflozin than in patients with and without diabetes. Serious renal adverse events were also less frequent in patients assigned to dapagliflozin compared with placebo.
[0280] In conclusion, in patients with HF and low ejection fraction, the SGLT2 inhibitor dapagliflozin reduced the risk of worsening heart failure and cardiovascular mortality and improved symptoms, regardless of baseline diabetes and glycated hemoglobin levels. These benefits were observed superior to superior standard-of-care therapy in both people with and without diabetes. Taken together, these data support the use of dapagliflozin for the treatment of heart failure with low ejection fraction, regardless of glycemic status, in people with and without diabetes.
[0281] All references cited herein, including publications, patent applications, and patents, are herein incorporated by reference to the same extent as if each reference was individually and specifically indicated to be incorporated by reference and was set forth in its entirety.
[0282] Unless otherwise indicated, the recitation of ranges of values herein is merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, and each separate value is incorporated herein as if it were individually set forth herein. All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. Any examples or illustrative language (e.g., "etc.") provided herein are intended merely to more clearly illustrate the disclosure and do not pose a limitation on the scope of the disclosure unless otherwise claimed. No language in the specification should be construed as indicating any non-claimed element as essential to the practice of the disclosure.
[0283] Various embodiments of the present disclosure are described herein, including the best mode known to the inventors for carrying out the disclosure. Variations of these embodiments will be apparent to those of skill in the art upon reading the above description. The inventors anticipate that skilled artisans will employ such variations as appropriate, and the inventors intend the present disclosure to be practiced otherwise than as expressly described herein. Accordingly, this disclosure includes all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Furthermore, this disclosure encompasses any combination of the above-described elements in all possible variations thereof unless otherwise indicated herein or otherwise clearly contradicted by context.
[0284] Example 4 DAPA-HF Phase III Clinical Trial Results - Effect of Dapagliflozin on Reducing Hyperkalemia in Patients with HF Introduction Hyperkalemia often limits the use of mineralocorticoid receptor antagonists (MRAs) in patients with heart failure and low ejection fraction (HFrEF), preventing the use of this life-saving therapy in these patients. In the prespecified analysis presented in this example, the sodium-glucose cotransporter 2 (SGLT-2) inhibitor dapagliflozin was evaluated to determine whether treatment with dapagliflozin reduced the risk of hyperkalemia associated with MRA use in patients with HFrEF.
[0285] method In the Dapagliflozin And Prevention of Adverse-outcomes in Heart Failure trial (DAPA-HF), we examined the risk of developing mild hyperkalemia (potassium >5.5 mmol / L) and moderate / severe hyperkalemia (>6.0 mmol / L) according to baseline MRA use and randomized treatment allocation using Cox regression analysis.
[0286] result Overall, 3,370 (70.1%) patients in the DAPA-HF study were treated with MRAs. Mild and moderate / severe hyperkalemia occurred in 180 (11%) and 21 (1.2%) patients treated with dapagliflozin, compared with 204 (12.6%) and 40 (2.4%) patients receiving placebo (Table 8 and Figures 18A-18B). This resulted in a hazard ratio (HR) of 0.86 (0.70-1.05) for mild hyperkalemia and 0.50 (0.29-0.85) for moderate / severe hyperkalemia comparing dapagliflozin with placebo. Dapagliflozin treatment halved the incidence of MRA-associated moderate / severe hyperkalemia in patients with HFrEF.
[0287] [Table 19] Furthermore, the present invention encompasses the following aspects. 1. A method of treating heart failure with reduced ejection fraction (HFrEF) in a patient, comprising administering to the patient an effective amount of a sodium-glucose cotransporter 2 (SGLT2) inhibitor. 2. A method for treating HFrEF in a patient without type 2 diabetes (T2D), comprising administering to the patient an effective amount of a sodium-glucose cotransporter 2 (SGLT2) inhibitor. 3. A method for treating HFrEF in a patient with T2D, comprising administering to said patient an effective amount of an SGLT2 inhibitor. 4. A method for preventing or delaying a fatal cardiovascular event in a patient with HFrEF without T2D, comprising administering to said patient an effective amount of an SGLT2 inhibitor. 5. A method for preventing or delaying a fatal cardiovascular event in a patient with HFrEF and T2D, comprising administering to said patient an effective amount of an SGLT2 inhibitor. 6. A method for treating HFrEF in a patient without T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor, wherein the patient does not experience adverse events related to renal failure during treatment. 7. A method for treating HFrEF in a patient with T2D, comprising administering to the patient an effective amount of an SGLT2 inhibitor, wherein the patient does not experience adverse events related to renal failure during treatment. 8. The method according to item 6 or 7, wherein the absence of adverse events associated with renal failure includes no or little reduction in eGFR level, no end-stage renal disease (ESRD) and / or no death from renal causes. 9. A method for reducing the total number of standard heart failure (HF) medications taken by a patient with HFrEF without T2D, comprising administering to said patient an effective amount of an SGLT2 inhibitor. 10. A method for reducing the total number of standard HF medications taken by a patient with HFrEF and T2D, comprising administering to said patient an effective amount of an SGLT2 inhibitor. 11. The method according to any one of items 1 to 10, wherein the SGLT2 inhibitor is dapagliflozin, canagliflozin, empagliflozin, sotagliflozin, ipragliflozin, or ertugliflozin, or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. 12. The method of item 11, wherein the SGLT2 inhibitor is dapagliflozin or a pharmaceutically acceptable salt, solvate, mixed solvate, complex, or prodrug thereof. 13. The method according to paragraph 12, wherein the dapagliflozin is in the form of an amorphous solid. 14. The method of claim 12, wherein the dapagliflozin is in the form of a crystalline solid. 15. The dapagliflozin has the structure:
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Claims
1. A pharmaceutical composition comprising dapagliflozin for reducing cardiovascular mortality and worsening of heart failure (HF) in patients with heart failure with reduced ejection fraction (HFrEF), comprising: the patient does not have type 2 diabetes, the patient is also receiving at least one standard of care treatment for HF; and cardiovascular mortality and worsening of heart failure are reduced compared to a dosing regimen in which the patient receives only at least one standard of care drug for HF; To further improve the symptoms of heart failure, Pharmaceutical compositions.
2. The pharmaceutical composition of claim 1, wherein the worsening heart failure comprises unplanned hospitalization due to heart failure and / or emergency heart failure outpatient visits.
3. Unplanned hospitalization due to heart failure (a) new or worsening symptoms of HF experienced by the patient; and / or (b) objective evidence of new or worsening symptoms of HF; and / or (c) Initiating or intensifying specialized HF treatment The pharmaceutical composition according to claim 2, wherein the composition is one or more of the following:
4. The pharmaceutical composition of claim 3, wherein the unplanned hospitalization due to HF comprises a first hospitalization or a re-hospitalization.
5. Emergency HF outpatient clinic (a) Emergency room outpatient visits for the primary diagnosis of HF not requiring hospitalization; (b) Emergency room visits for the primary diagnosis of HF requiring intravenous diuretics or vasoactive agents, including inotropes, vasopressors, or vasodilators; mechanical or surgical intervention, including mechanical circulatory support such as intra-aortic balloon pumps, ventricular assist devices, extracorporeal membrane oxygenation, and total ventricular assist devices, and / or mechanical fluid removal, including hyperfiltration, hemofiltration, and dialysis, but not requiring hospitalization; (c) urgent walk-in visits to clinics for the primary diagnosis of HF; (d) Urgent walk-in visits to a clinic requiring treatment other than an increase in oral diuretics alone; (e) initiation or intensification of specialized HF treatment; and / or (f) Initiation of intravenous therapy The pharmaceutical composition of claim 2, comprising one or more of:
6. 2. The pharmaceutical composition of claim 1, wherein the administered dose of dapagliflozin is 10 mg per day.
7. 7. The pharmaceutical composition of claim 1, wherein the improvement in heart failure symptoms is characterized by a higher Kansas City Cardiomyopathy Questionnaire Total Symptom Score (KCCQ-TSS) score in the patient after initiation of treatment with the pharmaceutical composition compared to the KCCQ-TSS score in the patient before initiation of treatment with the pharmaceutical composition.
8. 8. The pharmaceutical composition of claim 7, wherein the higher score on the KCCQ-TSS is at least 5 points higher compared to the score before initiation of treatment with the pharmaceutical composition.
9. 8. The pharmaceutical composition of claim 7, wherein the higher score on the KCCQ-TSS is at least 10 points higher compared to the score before initiation of treatment with the pharmaceutical composition.
10. 8. The pharmaceutical composition of claim 7, wherein the higher score on the KCCQ-TSS is at least 15 points higher compared to the score before initiation of treatment with the pharmaceutical composition.
Citation Information
Patent Citations
Oxazolidinones for the treatment and / or prevention of heart failure
JP2011506363A