Engineering Radioactive Microspheres for Intra‐Arterial Brachytherapy Using Radiation‐Induced Graft Polymerization

Author:

Xu Xiao12,Chen Hu1,Zhao Zhenwen1,Wang Yangjie3,He Pan1,Cheng Hongwei1,Gao Xing1,Shi Yesi1,Li Yesen4,Huang Jinxiong4,Peng Yisheng1,Chu Chengchao1,Zhang Yang1,Liu Chao1,Li Bo5,Mao Jingsong1,Ma Hongjuan2,Liu Gang1ORCID

Affiliation:

1. State Key Laboratory of Vaccines for Infectious Diseases, Xiang an Biomedicine Laboratory, National Innovation Platform for Industry‐Education Integration in Vaccine Research, State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, Center for Molecular Imaging and Translational Medicine, School of Public Health Xiamen University Xiamen 361102 China

2. Shanghai Applied Radiation Institute Shanghai University Shanghai 200444 China

3. School of Aerospace Engineering Tsinghua University Beijing 100084 China

4. Department of Nuclear Medicine, The First Affiliated Hospital of Xiamen University, School of Medicine Xiamen University Xiamen 361003 China

5. Department of General Surgery (Hepatobiliary Surgery) The Affiliated Hospital of Southwest Medical University Luzhou 646000 China

Abstract

AbstractIntravascular brachytherapy requires advances in radio‐embolization technologies that combine brilliant radiostability efficacy with a facile and green synthesis route. A hybrid‐integrated radioactive microsphere strategy using phosphorylcholine‐modified lutetium‐177 coordinated polymeric microspheres (177Lu‐PCMs) is reported that are fabricated via radiation‐induced graft polymerization for imaging‐guided locoregional intravascular brachytherapy. The underlying formation mechanism of 177Lu‐PCMs is elucidated using first‐principles computations and density functional theory calculations, and 177Lu loading mechanisms are investigated with Near‐edge and extended X‐ray absorption fine structure spectroscopy. The engineered 177Lu‐PCMs exhibit excellent mechanical properties, good hydrophilicity, and controlled sphere diameter. These features provide advantages of ultra‐stable embolic radio‐theranostics, which is demonstrated in different preclinical rodent models and isolated human liver tumor tissues. During locoregional intra‐arterial brachytherapy, 177Lu‐PCMs can be visualized via SPECT to validate the in vivo biodistribution and retention in real time, achieving precise delivery, effective anti‐cancer treatment, and a distinguished safety profile without degradation, ectopic embolization, and adverse reactions. Therefore, this study offer a new avenue for the development of a highly innovative and translational approach for precision intra‐arterial brachytherapy.

Funder

Major State Basic Research Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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