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Empagliflozin Inhibits Basal and IL-1β-Mediated MCP-1/CCL2 and Endothelin-1 Expression in Human Proximal Tubular
Markus Pirklbauer1, Maximilian Bernd1, Lisa Fuchs1
1Department of Internal Medicine IV-Nephrology and Hypertension, Medical University Innsbruck, Anichstrasse 35, 6020 Innsbruck, Austria.
Abstract:
SGLT2 inhibitors (SGLT2i) slow the progression of chronic kidney disease; however, evidence for the underlying molecular mechanisms is scarce. We investigated SGLT2i-mediated effects on differential gene expression in two independent human proximal tubular cell (HPTC) lines (HK-2 and RPTEC/TERT1) at the mRNA and protein levels under normoglycemic conditions, utilizing IL-1β as a pro-inflammatory mediator. Microarray hybridization identified 259 genes that were uniformly upregulated by IL-1β (10 mg/mL) and downregulated by empagliflozin (Empa) (500 nM) after 24 h of stimulation in two independent HPTC lines (n = 2, each). The functional annotation of these genes identified eight pathway clusters. Among 12 genes annotated to the highest ranked cluster (enrichment score, 3.51), monocyte chemoattractant protein-1/CC-chemokine ligand 2 (MCP-1/CCL2) and endothelin-1 (ET-1) were selected for verification at mRNA and protein levels based on their established involvement in the early pathogenesis of chronic kidney disease: IL-1β upregulated basal MCP-1/CCL2 (15- and 19-fold) and ET-1 (3- and 8-fold) mRNA expression, while Empa downregulated basal MCP-1/CCL2 (0.6- and 0.5-fold) and ET-1 (0.3- and 0.2-fold) mRNA expression as early as 1 h after stimulation and for at least 24 h in HK-2 and RPTEC/TERT1 cells, respectively. The co-administration of Empa inhibited IL-1β-mediated MCP-1/CCL2 (0.2-fold, each) and ET-1 (0.2-fold, each) mRNA expression as early as 1 h after ligand stimulation and for at least 24 h in both HPTC lines, respectively. This inhibitory effect of Empa on basal and IL-1β-mediated MCP-1/CCL2 and ET-1 mRNA expression was corroborated at the protein level. Our study presents novel evidence for the interference of SGLT2 inhibition with tubular inflammatory response mechanisms under normoglycemic conditions that might account for SGLT2i-mediated nephroprotection.
Insights
Sodium-glucose cotransporter 2 inhibitors (SGLT2i) reduce inflammation in kidney cells by downregulating key genes like MCP-1/CCL2 and ET-1. This reveals molecular mechanisms behind SGLT2i
Area of Science:
- Nephrology
- Molecular Biology
- Pharmacology
Background:
- Sodium-glucose cotransporter 2 inhibitors (SGLT2i) are known to slow chronic kidney disease progression.
- The precise molecular mechanisms underlying SGLT2i's nephroprotective effects remain largely unelucidated.
- Inflammation plays a critical role in the early pathogenesis of chronic kidney disease.
Purpose of the Study:
- To investigate the molecular mechanisms of SGLT2 inhibitors (SGLT2i) on gene expression in human proximal tubular cells (HPTCs).
- To explore the effects of empagliflozin (Empa) on inflammatory gene expression under normoglycemic conditions.
- To identify specific pathways and genes modulated by SGLT2 inhibition in response to pro-inflammatory stimuli.
Main Methods:
- Utilized two independent human proximal tubular cell lines (HK-2 and RPTEC/TERT1).
- Administered interleukin-1 beta (IL-1β) as a pro-inflammatory mediator and empagliflozin (Empa) as the SGLT2 inhibitor.
- Analyzed differential gene expression at both mRNA and protein levels using microarray and subsequent verification.
Main Results:
- Identified 259 genes uniformly upregulated by IL-1β and downregulated by Empa in both HPTC lines.
- Monocyte chemoattractant protein-1/CC-chemokine ligand 2 (MCP-1/CCL2) and endothelin-1 (ET-1) mRNA and protein levels were significantly reduced by Empa.
- Empa inhibited both basal and IL-1β-mediated upregulation of MCP-1/CCL2 and ET-1, demonstrating a direct anti-inflammatory effect.
Conclusions:
- SGLT2 inhibition interferes with tubular inflammatory response mechanisms under normoglycemic conditions.
- Downregulation of key inflammatory mediators like MCP-1/CCL2 and ET-1 by SGLT2 inhibitors may contribute to their nephroprotective effects.
- Provides novel molecular insights into how SGLT2 inhibitors protect the kidneys.
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