表观遗传学
脂毒性
糖尿病肾病
足细胞
医学
发病机制
炎症体
疾病
炎症
染色质
生物
生物信息学
细胞生物学
转录因子
氧化应激
上睑下垂
糖尿病
TXNIP公司
肾脏疾病
先天免疫系统
肾
癌症研究
后生
表观基因组
TLR4型
转录组
肾单位
神经科学
免疫学
信号转导
免疫系统
MDA5型
阿巴塔克普
TFEB
急性肾损伤
NF-κB
多囊肾病
作者
Sima Al-Masri,Jennifer Coelho,Linto Thomas
标识
DOI:10.3389/fphys.2026.1747053
摘要
Diabetic kidney disease (DKD) arises from intersecting metabolic, hemodynamic, inflammatory, and epigenetic programs that progressively remodel the glomerulus and tubulointerstitium on a molecular level. Hyperglycemia-driven AGE-RAGE signaling, PKC activation, and RAAS dysregulation converge on oxidative stress, endothelial dysfunction, and profibrotic transcription (e.g., TGF-beta/Smad), while mitochondrial and endoplasmic-reticulum stress amplify lipotoxicity and cell death. Innate immune activation (macrophage recruitment and inflammasome signaling) and maladaptive repair promote extracellular-matrix accumulation and nephron loss. Multi-omics studies further implicate durable chromatin and non-coding RNA changes that sustain metabolic memory despite improved glycemia. In this review, we synthesize landmark and recent mechanistic data spanning glomerular filtration barrier injury, tubular stress pathways, and immune-metabolic crosstalk, and we highlight therapeutic strategies that move upstream of symptom control. We discuss established disease-modifying agents (RAAS blockade, SGLT2 inhibitors, and non-steroidal MR antagonists) alongside investigational approaches including epigenetic modulators, AMPK/NAD + axis targeting, and gene/RNA-based interventions. Together, these advances frame DKD as a disorder of rewired signaling and gene-regulatory circuitry, where convergent molecular nodes across podocytes, endothelium, and tubules offer the actionable considerations for durable renal protection.
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