足细胞
内分泌学
医学
内科学
后代
肾小球硬化
下调和上调
KLF4公司
盐皮质激素受体
尼福林
地塞米松
表观遗传学
胎儿程序设计
肾脏疾病
糖皮质激素受体
癌症研究
肾脏发育
糖皮质激素
发育毒性
生物
局灶节段性肾小球硬化
肾
狭缝隔膜
胎儿
间充质干细胞
蛋白尿
染色质免疫沉淀
胎盘
作者
Xiaoqi Zhao,Haiyun Chen,Yan Zhu,Zhiping Xia,Hangyuan He,Ying Liu,Tianshu Yang,Hao Wang,Ying Ao
标识
DOI:10.1002/advs.202519743
摘要
Podocyte developmental defects are pivotal in initiating glomerulosclerosis. Although antenatal glucocorticoid therapy improves neonatal outcomes, prenatal dexamethasone exposure (PDE) may trigger intrauterine programming that predisposes offspring to chronic kidney disease, yet its mechanisms remain elusive. Here, we show that PDE disrupts podocyte differentiation and induces glomerulosclerosis in adult rat offspring. Mechanistically, PDE downregulated KLF4 and upregulated miR-135a-5p, which targets KLF4. In differentiating metanephric mesenchymal stem cells, dexamethasone reduced KLF4 while increasing miR-135a-5p expression. Chromatin analyses revealed that activated glucocorticoid receptor (GR) bound the miR-135a-5p promoter and recruited P300, enhancing histone acetylation and supporting sustained upregulation of miR-135a-5p. Elevated miR-135a-5p suppressed KLF4, impairing podocyte development and promoting long-term glomerular injury. Early administration of a miR-135a-5p antagomir partially restored podocyte markers and ameliorated PDE-induced sclerosis. These findings identify a previously unrecognized GR-P300-miR-135a-5p/KLF4 epigenetic axis governing fetal programming of podocyte injury. Our work provides mechanistic insight into the developmental origins of glucocorticoid-induced kidney disease and highlights miR-135a-5p as a promising biomarker and potential therapeutic target for preventing fetal-origin glomerulosclerosis.
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