Ultrasound-guided renal artery administration of angiopoietin-1 RNA therapy slows the progression of preclinical WT1 glomerular disease.
In a Wt1+/R394W mouse model of WT1 glomerulopathy, ultrasound-guided renal artery delivery of integrin αvβ3-targeted angiopoietin-1 mRNA nanocomplexes localized expression to the kidney and reduced albuminuria, endothelial injury, podocyte loss, and glomerulosclerosis.
Open original publication →What the AI sees
In a Wt1+/R394W mouse model of WT1 glomerulopathy, ultrasound-guided renal artery delivery of integrin αvβ3-targeted angiopoietin-1 mRNA nanocomplexes localized expression to the kidney and reduced albuminuria, endothelial injury, podocyte loss, and glomerulosclerosis.
Research significance
The record provides preclinical evidence that restoring reduced glomerular angiopoietin-1 through kidney-targeted mRNA delivery can slow WT1-associated glomerular disease; it remains an inference—not human evidence—that this approach could preserve renal function or delay dialysis or transplantation in affected children.
Source abstract
Mutations in the transcription factor gene Wilms Tumor 1 (WT1) are one of the leading causes of congenital glomerular disease, characterized by severe urinary protein loss and glomerular scarring. No disease-modifying therapies exist for WT1 glomerulopathies, and affected children rely on dialysis or kidney transplantation. We evaluated a previously uncharacterized treatment in a mouse model with an orthologous human mutation in Wt1 (Wt1+/R394W) that replicates the pathology of WT1 glomerulopathy. Lipid nanocomplexes were engineered to target integrin αvβ3 for efficient delivery of mRNA to primary podocytes and glomerular endothelial cells in vitro. A minimally invasive ultrasound-guided renal artery injection enabled precise and specific kidney localization in vivo, a finding not replicated by systemic administration. Nanocomplex-derived protein localized in glomeruli for up to 7 days in healthy and diseased mice. This platform was then used to perform an interventional preclinical trial in Wt1+/R394W mice, delivering angiopoietin-1 (Angpt1) mRNA, a vascular growth factor critical for glomerular health that is reduced in Wt1+/R394W podocytes. Angpt1 nanocomplex therapy reduced albuminuria, preserved glomerular endothelial integrity, prevented podocyte loss, and alleviated glomerulosclerosis in Wt1+/R394W mice. These findings demonstrate the therapeutic potential of this targeted approach for WT1 glomerulopathy and provide a foundation for clinical translation to improve outcomes in children with glomerular disease.