肝硬化
磁共振成像
肝纤维化
细胞外基质
肝病
赖氨酰氧化酶
化学
纤维化
医学
癌症研究
肝星状细胞
肝纤维化
慢性肝病
血色病
病理
肝细胞癌
生物医学工程
生物化学
细胞外
赖氨酸
材料科学
纳米技术
作者
Yingqi Wang,Qian Zhang,Bowen Yan,Lihua Pang,Ren Yi,Muhammad Inam,Mengmeng Zhang,Nengyi Ni,Xueli Xu,Xiao Sun,Song Zhou
标识
DOI:10.1002/adhm.202503891
摘要
ABSTRACT Liver fibrosis has the potential to advance to irreversible cirrhosis or hepatocellular carcinoma, rendering early diagnosis and intervention of utmost importance. During liver fibrogenesis, lysyl oxidase enzymes become upregulated, which facilitate ε amino groups of lysine in extracellular matrix proteins to become oxidized, yielding the aldehyde‐containing allysine (Lys Ald ). In this context, a novel hydrazine‐functionalized gadolinium‐platinum nanoplatform (Pt@Gd 2 O 3 ‐PEG‐N 2 H 4 ) has been engineered to facilitate accurate diagnosis and therapy of liver fibrosis. The platform achieves targeted delivery to activated hepatic stellate cells (aHSCs) via hydrazine‐mediated covalent binding to Lys Ald , which is enriched in fibrotic regions of the liver. Additionally, GPPN exhibits dual enzymatic activities analogous to catalase and peroxidase, providing oxygen to mitigate hypoxia in fibrotic liver tissues and generating highly toxic hydroxyl radicals (·OH) for the selective ablation of aHSCs. There are no significant adverse effects in histological or hematological evaluations. Moreover, GPPN improves magnetic resonance imaging (MRI) signals of liver fibrosis to enable more accurate assessment of disease progression. Overall, GPPN presents considerable potential for the precise diagnosis and effective therapy of liver fibrosis.
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