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Sodium-glucose cotransporter-2 inhibitors: Understanding the mechanisms for therapeutic promise and persisting risks
Rachel J Perry1, Gerald I Shulman1
1Departments of Cellular and Molecular Physiology and Internal Medicine (Endocrinology), Yale School of Medicine, New Haven, Connecticut, USA rachel.perry@yale.edu gerald.shulman@yale.edu.
Abstract:
In a healthy person, the kidney filters nearly 200 g of glucose per day, almost all of which is reabsorbed. The primary transporter responsible for renal glucose reabsorption is sodium-glucose cotransporter-2 (SGLT2). Based on the impact of SGLT2 to prevent renal glucose wasting, SGLT2 inhibitors have been developed to treat diabetes and are the newest class of glucose-lowering agents approved in the United States. By inhibiting glucose reabsorption in the proximal tubule, these agents promote glycosuria, thereby reducing blood glucose concentrations and often resulting in modest weight loss. Recent work in humans and rodents has demonstrated that the clinical utility of these agents may not be limited to diabetes management: SGLT2 inhibitors have also shown therapeutic promise in improving outcomes in heart failure, atrial fibrillation, and, in preclinical studies, certain cancers. Unfortunately, these benefits are not without risk: SGLT2 inhibitors predispose to euglycemic ketoacidosis in those with type 2 diabetes and, largely for this reason, are not approved to treat type 1 diabetes. The mechanism for each of the beneficial and harmful effects of SGLT2 inhibitors-with the exception of their effect to lower plasma glucose concentrations-is an area of active investigation. In this review, we discuss the mechanisms by which these drugs cause euglycemic ketoacidosis and hyperglucagonemia and stimulate hepatic gluconeogenesis as well as their beneficial effects in cardiovascular disease and cancer. In so doing, we aim to highlight the crucial role for selecting patients for SGLT2 inhibitor therapy and highlight several crucial questions that remain unanswered.
Insights
Sodium-glucose cotransporter-2 (SGLT2) inhibitors lower blood glucose by preventing kidney reabsorption. These drugs show promise beyond diabetes for heart failure and cancer, but carry risks like ketoacidosis.
Area of Science:
- Nephrology
- Endocrinology
- Pharmacology
Background:
- The kidneys filter glucose, with sodium-glucose cotransporter-2 (SGLT2) being key for reabsorption.
- SGLT2 inhibitors are a new class of glucose-lowering agents used to treat diabetes.
- These drugs reduce blood glucose by inhibiting proximal tubule reabsorption, causing glycosuria.
Purpose of the Study:
- To review the mechanisms behind the beneficial and harmful effects of SGLT2 inhibitors.
- To explore their therapeutic potential in conditions beyond diabetes, such as heart failure and cancer.
- To highlight patient selection criteria and unanswered questions regarding SGLT2 inhibitor therapy.
Main Methods:
- Review of existing human and rodent studies on SGLT2 inhibitors.
- Analysis of mechanisms causing euglycemic ketoacidosis, hyperglucagonemia, and hepatic gluconeogenesis.
- Examination of preclinical and clinical data on cardiovascular and oncological benefits.
Main Results:
- SGLT2 inhibitors promote glycosuria, leading to reduced blood glucose and weight loss.
- These agents demonstrate therapeutic promise in heart failure, atrial fibrillation, and certain cancers.
- Risks include predisposition to euglycemic ketoacidosis in type 2 diabetes patients.
Conclusions:
- SGLT2 inhibitors offer benefits beyond diabetes management but require careful patient selection.
- Understanding the mechanisms of both beneficial and adverse effects is crucial for optimizing therapy.
- Further research is needed to address remaining questions regarding SGLT2 inhibitor's multifaceted actions.
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