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The actions of SGLT2 inhibitors on metabolism, renal function and blood pressure
Merlin C Thomas1, David Z I Cherney2
1Department of Diabetes, Central Clinical School, Monash University, Melbourne, VIC, Australia.
Abstract:
Inhibition of the sodium-glucose cotransporter (SGLT) 2 in the proximal tubule of the kidney has a broad range of effects on renal function and plasma volume homeostasis, as well as on adiposity and energy metabolism across the entire body. SGLT2 inhibitors are chiefly used in type 2 diabetes for glucose control, achieving reductions in HbA1c of 7-10 mmol/mol (0.6-0.9%) when compared with placebo. This glucose-lowering activity is proportional to the ambient glucose concentration and glomerular filtration of this glucose, so may be greater in those with poor glycaemic control and/or hyperfiltration at baseline. Equally, the glucose-lowering effects of SGLT2 inhibitors are attenuated in individuals without diabetes and those with a reduced eGFR. However, unlike the glucose-lowering effects of SGLT2 inhibitors, the spill-over of sodium and glucose beyond the proximal nephron following SGLT2 inhibition triggers dynamic and reversible realignment of energy metabolism, renal filtration and plasma volume without relying on losses into the urine. In addition, these processes are observed in the absence of significant glucosuria or ongoing natriuresis. In the long term, the resetting of energy/salt/water physiology following SGLT2 inhibition has an impact, not only on adiposity, renal function and blood pressure control, but also on the health and survival of patients with type 2 diabetes. A better understanding of the precise biology underlying the acute actions of SGLT2 inhibitors in the kidney and how they are communicated to the rest of the body will likely lead to improved therapeutics that augment similar pathways in individuals with, or even without, diabetes to achieve additional benefits.
Insights
Sodium-glucose cotransporter 2 (SGLT2) inhibitors impact kidney function, energy metabolism, and body weight. These drugs offer benefits beyond glucose control in type 2 diabetes patients, influencing overall health and survival.
Area of Science:
- Nephrology
- Endocrinology
- Metabolic Diseases
Background:
- Sodium-glucose cotransporter 2 (SGLT2) inhibitors are primarily used for glucose control in type 2 diabetes.
- Their mechanism involves the proximal tubule of the kidney, affecting renal function and homeostasis.
- Beyond glucose reduction, SGLT2 inhibition influences adiposity and energy metabolism.
Purpose of the Study:
- To elucidate the multifaceted effects of SGLT2 inhibition on renal and systemic physiology.
- To explore mechanisms beyond glucosuria that contribute to SGLT2 inhibitor benefits.
- To understand the long-term impact on patient health and survival.
Main Methods:
- Review of existing literature on SGLT2 inhibitor pharmacology and physiology.
- Analysis of data on glucose-lowering efficacy and its relation to glycemic control and filtration rate.
- Examination of studies investigating non-glycemic effects such as sodium/glucose spill-over and metabolic realignment.
Main Results:
- SGLT2 inhibitors reduce HbA1c by 7-10 mmol/mol (0.6-0.9%) compared to placebo.
- Glucose-lowering effects are dependent on ambient glucose and filtration rate, attenuated in non-diabetics or those with reduced eGFR.
- SGLT2 inhibition triggers dynamic metabolic, renal filtration, and plasma volume adjustments independent of significant glucosuria or natriuresis.
Conclusions:
- SGLT2 inhibition induces systemic benefits through renal mechanisms, impacting adiposity, renal function, and blood pressure.
- These effects contribute to improved health and survival in type 2 diabetes patients.
- Further understanding of SGLT2 inhibitor biology may lead to enhanced therapeutics for diabetic and non-diabetic individuals.
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