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VEGFR2 Blockade Improves Renal Damage in an Experimental Model of Type 2 Diabetic Nephropathy
Carolina Lavoz1, Raul R Rodrigues-Diez2,3, Anita Plaza1
1Laboratorio de Nefrología, Facultad de Medicina, Universidad Austral de Chile, Bueras 1003, Valdivia, Chile.
Abstract:
The absence of optimal treatments for Diabetic Nephropathy (DN) highlights the importance of the search for novel therapeutic targets. The vascular endothelial growth factor receptor 2 (VEGFR2) pathway is activated in experimental and human DN, but the effects of its blockade in experimental models of DN is still controversial. Here, we test the effects of a therapeutic anti-VEGFR2 treatment, using a VEGFR2 kinase inhibitor, on the progression of renal damage in the BTBR ob/ob (leptin deficiency mutation) mice. This experimental diabetic model develops histological characteristics mimicking the key features of advanced human DN. A VEGFR2 pathway-activation blockade using the VEGFR2 kinase inhibitor SU5416, starting after kidney disease development, improves renal function, glomerular damage (mesangial matrix expansion and basement membrane thickening), tubulointerstitial inflammation and tubular atrophy, compared to untreated diabetic mice. The downstream mechanisms involved in these beneficial effects of VEGFR2 blockade include gene expression restoration of podocyte markers and downregulation of renal injury biomarkers and pro-inflammatory mediators. Several ligands can activate VEGFR2, including the canonical ligands VEGFs and GREMLIN. Activation of a GREMLIN/VEGFR2 pathway, but not other ligands, is correlated with renal damage progression in BTBR ob/ob diabetic mice. RNA sequencing analysis of GREMLIN-regulated genes confirm the modulation of proinflammatory genes and related-molecular pathways. Overall, these data show that a GREMLIN/VEGFR2 pathway activation is involved in diabetic kidney disease and could potentially be a novel therapeutic target in this clinical condition.
Insights
Targeting the GREMLIN/vascular endothelial growth factor receptor 2 (VEGFR2) pathway may offer a novel treatment for diabetic kidney disease. Blocking VEGFR2 improved kidney function and reduced damage in a mouse model of advanced diabetic nephropathy.
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- Diabetic Nephropathy (DN) lacks optimal treatments, necessitating new therapeutic targets.
- The vascular endothelial growth factor receptor 2 (VEGFR2) pathway is implicated in DN, but its blockade effects remain debated.
- The BTBR ob/ob mouse model exhibits key features of advanced human DN.
Purpose of the Study:
- To investigate the therapeutic potential of blocking the VEGFR2 pathway in established DN.
- To identify specific ligands and molecular mechanisms driving DN progression.
Main Methods:
- Treatment of BTBR ob/ob mice with a VEGFR2 kinase inhibitor (SU5416) after disease onset.
- Assessment of renal function, glomerular damage, inflammation, and tubular injury.
- Analysis of gene expression, including podocyte markers, injury biomarkers, and inflammatory mediators.
- RNA sequencing to analyze GREMLIN-regulated genes and pathways.
Main Results:
- VEGFR2 blockade significantly improved renal function and ameliorated glomerular, tubulointerstitial, and tubular damage.
- Treatment restored podocyte marker gene expression and downregulated renal injury biomarkers and pro-inflammatory mediators.
- GREMLIN/VEGFR2 pathway activation, not other ligands, correlated with DN progression.
- RNA sequencing confirmed GREMLIN's role in modulating pro-inflammatory genes and pathways.
Conclusions:
- The GREMLIN/VEGFR2 pathway is a key driver of renal damage in experimental DN.
- Targeting this pathway represents a promising therapeutic strategy for diabetic kidney disease.
- VEGFR2 kinase inhibition shows potential for treating advanced stages of DN.

