足细胞
医学
肾小球硬化
肾
癌症研究
肾小球
局灶节段性肾小球硬化
肾功能
病理
遗传增强
肾脏疾病
靶向治疗
生物信息学
肾动脉
内科学
肾病科
核糖核酸
透析
转录因子
基因
肾小球
肾病
全身给药
生物
疾病
泌尿科
肾小球疾病
作者
Saif Malik,Jennifer C. Chandler,Ruhina Maeshima,Maria Kolatsi‐Joannou,William J. Mason,Lauren G. Russell,Shunping Han,Yanis Harfouche,Daniyal J. Jafree,Emily A. E. Moore,Hanna GAUTIER,Christina Katsiva,Reem Al‐Saadi,Kathy Pritchard‐Jones,Daniel J. Stuckey,Andrew V. Benest,David O. Bates,Paul J. Winyard,Aoife Waters,Luigi Gnudi
标识
DOI:10.1126/scitranslmed.adv1289
摘要
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.
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