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The Benefit of Sodium-Glucose Co-Transporter Inhibition in Heart Failure: The Role of the Kidney.


ABSTRACT: In the essential homeostatic role of kidney, two intrarenal mechanisms are prominent: the glomerulotubular balance driving the process of Na+ and water reabsorption in the proximal tubule, and the tubuloglomerular feedback which senses the Na+ concentration in the filtrate by the juxtaglomerular apparatus to provide negative feedback on the glomerular filtration rate. In essence, the two mechanisms regulate renal oxygen consumption. The renal hyperfiltration driven by increased glomerular filtration pressure and by glucose diuresis can affect renal O2 consumption that unleashes detrimental sympathetic activation. The sodium-glucose co-transporters inhibitors (SGLTi) can rebalance the reabsorption of Na+ coupled with glucose and can restore renal O2 demand, diminishing neuroendocrine activation. Large randomized controlled studies performed in diabetic subjects, in heart failure, and in populations with chronic kidney disease with and without diabetes, concordantly address effective action on heart failure exacerbations and renal adverse outcomes.

SUBMITTER: Gronda E 

PROVIDER: S-EPMC9569705 | biostudies-literature | 2022 Oct

REPOSITORIES: biostudies-literature

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The Benefit of Sodium-Glucose Co-Transporter Inhibition in Heart Failure: The Role of the Kidney.

Gronda Edoardo E   Vanoli Emilio E   Iacoviello Massimo M   Caldarola Pasquale P   Gabrielli Domenico D   Tavazzi Luigi L  

International journal of molecular sciences 20221009 19


In the essential homeostatic role of kidney, two intrarenal mechanisms are prominent: the glomerulotubular balance driving the process of Na<sup>+</sup> and water reabsorption in the proximal tubule, and the tubuloglomerular feedback which senses the Na<sup>+</sup> concentration in the filtrate by the juxtaglomerular apparatus to provide negative feedback on the glomerular filtration rate. In essence, the two mechanisms regulate renal oxygen consumption. The renal hyperfiltration driven by incre  ...[more]

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