4.7 Article

Cardiac Sodium/Hydrogen Exchanger (NHE11) as a Novel Potential Target for SGLT2i in Heart Failure: A Preliminary Study

期刊

PHARMACEUTICS
卷 14, 期 10, 页码 -

出版社

MDPI
DOI: 10.3390/pharmaceutics14101996

关键词

SGLT2i; empagliflozin; heart failure; NHE1; NHE11; sodium channel

资金

  1. National Institute of Health Fondo de Investigaciones Sanitarias del Instituto de Salud Carlos III [PI20/01469, PI20/00071, CP18/00145, CP21/00041, FI21/00034, FI21/00186]
  2. Consorcio Centro de Investigacion Biomedica en Red, M.P. [CIBERCV] [CB16/11/00261]
  3. European Union

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This study investigated the transcriptome alterations of genes involved in sodium transport in heart failure (HF) and found the overexpression of SLC9C2 and SCL9A1 sodium transport genes. The study also showed a correlation between NHE11 protein levels and left ventricular diameters, and reduced NHE11 mRNA levels after treatment with empagliflozin. These findings reveal alterations in sodium transport and highlight the importance of these channels in HF progression.
Despite the reduction of cardiovascular events, including the risk of death, associated with sodium/glucose cotransporter 2 inhibitors (SGLT2i), their basic action remains unclear. Sodium/hydrogen exchanger (NHE) has been proposed as the mechanism of action, but there are controversies related to its function and expression in heart failure (HF). We hypothesized that sodium transported-related molecules could be altered in HF and modulated through SGLT2i. Transcriptome alterations in genes involved in sodium transport in HF were investigated in human heart samples by RNA-sequencing. NHE11 and NHE1 protein levels were determined by ELISA; the effect of empagliflozin on NHE11 and NHE1 mRNA levels in rats' left ventricular tissues was studied through RT-qPCR. We highlighted the overexpression of SLC9C2 and SCL9A1 sodium transport genes and the increase of the proteins that encode them (NHE11 and NHE1). NHE11 levels were correlated with left ventricular diameters, so we studied the effect of SGLT2i on its expression, observing that NHE11 mRNA levels were reduced in treated rats. We showed alterations in several sodium transports and reinforced the importance of these channels in HF progression. We described upregulation in NHE11 and NHE1, but only NHE11 correlated with human cardiac dysfunction, and its levels were reduced after treatment with empagliflozin. These results propose NHE11 as a potential target of SGLT2i in cardiac tissue.

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