Biomimetic Self‐Propelled Asymmetric Nanomotors for Cascade‐Targeted Treatment of Neurological Inflammation

Author:

Ye Jiamin1,Fan Yueyue1,She Yaoguang2,Shi Jiacheng1,Yang Yiwen1,Yuan Xue1,Li Ruiyan1,Han Jingwen1,Liu Luntao3,Kang Yong1,Ji Xiaoyuan14ORCID

Affiliation:

1. Academy of Medical Engineering and Translational Medicine Medical College Tianjin University Tianjin 300072 China

2. Department of General Surgery the First Medical Center Chinese People's Liberation Army General Hospital Beijing 100853 China

3. Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine Institute of Radiation Medicine Chinese Academy of Medical Sciences and Peking Union Medical College Tianjin 100730 China

4. Medical College Linyi University Linyi 276000 China

Abstract

AbstractThe precise targeted delivery of therapeutic agents to deep regions of the brain is crucial for the effective treatment of various neurological diseases. However, achieving this goal is challenging due to the presence of the blood‒brain barrier (BBB) and the complex anatomy of the brain. Here, a biomimetic self‐propelled nanomotor with cascade targeting capacity is developed for the treatment of neurological inflammatory diseases. The self‐propelled nanomotors are designed with biomimetic asymmetric structures with a mesoporous SiO2 head and multiple MnO2 tentacles. Macrophage membrane biomimetic modification endows nanomotors with inflammatory targeting and BBB penetration abilities The MnO2 agents catalyze the degradation of H2O2 into O2, not only by reducing brain inflammation but also by providing the driving force for deep brain penetration. Additionally, the mesoporous SiO2 head is loaded with curcumin, which actively regulates macrophage polarization from the M1 to the M2 phenotype. All in vitro cell, organoid model, and in vivo animal experiments confirmed the effectiveness of the biomimetic self‐propelled nanomotors in precise targeting, deep brain penetration, anti‐inflammatory, and nervous system function maintenance. Therefore, this study introduces a platform of biomimetic self‐propelled nanomotors with inflammation targeting ability and active deep penetration for the treatment of neurological inflammation diseases.

Funder

National Natural Science Foundation of China

National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

Publisher

Wiley

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