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Updated: May 8, 2025

Quantifying Acute Changes in Renal Sympathetic Nerve Activity in Response to Central Nervous System Manipulations in Anesthetized Rats
Published on: September 11, 2018
Interaction between SGLT2 and the sympathetic nervous system in normal and various cardiovascular metabolic disease
1Division of Clinical Pharmacology, Department of Pharmacology, Tochigi, Japan. katsurada@jichi.ac.jp.
Abstract:
Sodium-glucose cotransporter 2 (SGLT2) inhibitors have been shown to suppress cardiovascular events and are widely used for treating diabetes, chronic heart failure and chronic kidney disease. Although the underlying mechanisms by which SGLT2 inhibitors suppress cardiovascular events are not entirely clear, several mechanisms have been proposed to explain the cardiorenal protective effects of SGLT2 inhibitors. One of these involves sympathoinhibition. In vitro, SGLT2 expression is upregulated by norepinephrine, and SGLT2 inhibitors have been shown to attenuate SGLT2 expression and normalize the diuretic response to volume expansion with isotonic saline in rats with heart failure. These findings suggest that inhibition of renal sympathetic nerve activity is the mechanism underlying the beneficial effects of SGLT2 inhibitors on heart failure. Increased resting afferent renal nerve activity has been observed in several disease models, including models of hypertension, heart failure, and kidney disease, and might induce augmented sympathetic outflow via the central nervous system. SGLT2 inhibitors may suppress afferent renal nerve activity via intrarenal environmental modifications such as renal tissue hypoxia, inflammation, oxidative stress, mitochondrial function, and congestion, thereby inhibiting sympathetic outflow to the peripheral organs, including the heart and kidneys. On the other hand, SGLT2 is also expressed in the brain, and electrophysiological techniques in rats have shown that SGLT2 inhibitors suppress the activities of the rostral ventrolateral medulla neurons which project to the sympathetic preganglionic nuclei of the spinal cord to control sympathetic outflow, suggesting decreased sympathetic nerve activities. This mini review focuses on the bidirectional interaction between SGLT2 and the sympathetic nervous system and introduces recent related findings from Hypertension Research and other journals.
Insights
Sodium-glucose cotransporter 2 (SGLT2) inhibitors reduce cardiovascular events by inhibiting the sympathetic nervous system. These drugs may protect the heart and kidneys by reducing nerve activity in both the brain and kidneys.
Area of Science:
- Cardiology
- Nephrology
- Pharmacology
Background:
- Sodium-glucose cotransporter 2 (SGLT2) inhibitors are established treatments for diabetes, heart failure, and kidney disease.
- Their cardiovascular protective effects are partly attributed to sympathoinhibition, a reduction in sympathetic nervous system activity.
Purpose of the Study:
- To review the bidirectional interaction between SGLT2 and the sympathetic nervous system.
- To explore the mechanisms underlying the cardiorenal protective effects of SGLT2 inhibitors.
Main Methods:
- Review of in vitro and in vivo studies investigating SGLT2 expression and function.
- Analysis of electrophysiological data on SGLT2 inhibitor effects on central sympathetic pathways.
- Examination of intrarenal environmental factors influenced by SGLT2.
Main Results:
- SGLT2 expression is upregulated by norepinephrine and attenuated by SGLT2 inhibitors.
- SGLT2 inhibitors normalize diuretic responses in heart failure models.
- SGLT2 inhibitors suppress activity in brain regions controlling sympathetic outflow and reduce afferent renal nerve activity.
Conclusions:
- SGLT2 inhibitors exert cardiorenal protection partly by inhibiting sympathetic nerve activity.
- This inhibition occurs through central mechanisms in the brain and peripheral mechanisms affecting the kidneys.
- Modulation of intrarenal conditions like hypoxia and inflammation contributes to reduced sympathetic outflow.
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