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用于治疗高血氨相关性肝性脑病的趋化性锌微马达

Chemotactic Zn micromotor for treatment of high blood ammonia-associated hepatic encephalopathy.

作者信息

Feng Ye, Gao Chao, Peng Xiuyun, Chen Bin, Ding Miaomiao, Du Dailing, Rong Jinghui, Lv Qi, Wilson Daniela A, Tu Yingfeng, Peng Fei

机构信息

School of Materials Science and Engineering, Sun Yat-sen University, Guangzhou, China.

Key Laboratory of Joint Diagnosis and Treatment of Chronic Liver Disease and Liver Cancer of Lishui, Lishui People's Hospital, Lishui, China.

出版信息

Nat Commun. 2025 May 15;16(1):4525. doi: 10.1038/s41467-025-59650-0.

Abstract

Hepatic fibrosis involves hepatocyte damage, causing blood ammonia accumulation, which exacerbates liver pathology and crosses the blood-brain barrier, inducing hepatic encephalopathy. It is meaningful to construct a therapeutic platform for targeted ammonia clearance. In this work, a biocompatible water-powered Zn micromotor is constructed as an ammonia chemotaxis platform, which can be actuated by the water splitting reaction and the self-generated Zn gradient. It can propel towards NH·HO source through the formation of complex ions Zn(NH) and Zn(NH), representing a generalizable chemotaxis strategy via coordination reaction. In vivo, biomimetic collective behavior allows precise navigation and reduction of the intrahepatic ammonia level, reshaping the pathological microenvironment. This mechanism, operating in a green, zero-waste manner, facilitates integration of these micromotors into the domain of biological regulation. Such environment environment-adaptive platform is favorable for targeted treatment of hepatic fibrosis and hepatic encephalopathy caused by hyperammonemia, which is expected to provide inspiration for future personalized and precision medicine.

摘要

肝纤维化涉及肝细胞损伤,导致血氨蓄积,这会加剧肝脏病变并穿过血脑屏障,诱发肝性脑病。构建一个用于靶向清除氨的治疗平台具有重要意义。在这项工作中,构建了一种生物相容性水驱动的锌微马达作为氨趋化平台,它可以通过水分解反应和自身产生的锌梯度来驱动。它可以通过形成络合离子Zn(NH₃)₄₂和Zn(NH₃)₃₂向NH₃·H₂O源推进,这代表了一种通过配位反应的通用趋化策略。在体内,仿生集体行为可实现精确导航并降低肝内氨水平,重塑病理微环境。这种以绿色、零废物方式运行的机制有助于将这些微马达整合到生物调节领域。这种环境自适应平台有利于靶向治疗由高氨血症引起的肝纤维化和肝性脑病,有望为未来的个性化精准医学提供灵感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3740/12081644/092c63324428/41467_2025_59650_Fig1_HTML.jpg

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