Interfacially Mineralized Magnetic Colloidal Gel with Microenvironment‐Triggered Disassembly for Interventional Treatment of Hepatocellular Carcinoma

X Xingyu Liu (Key Laboratory of Biomedical Polymers Ministry of Education, College of Chemistry and Molecular Sciences) L Liang Dong J Jinlong Hu Y Yonghong Song (Key Laboratory of Value‐Added Catalytic Conversion and Reaction Engineering School of Chemistry and Chemical Engineering Hefei University of Technology Hefei 230009 China) X Xu Yan (Department of Orthopaedics and Traumatology) B Bing Chen T Tao Zhou (College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.) H Hanye Xing (Key Laboratory of Value‐Added Catalytic Conversion and Reaction Engineering School of Chemistry and Chemical Engineering Hefei University of Technology Hefei 230009 China) B Baoqiang Cao (Department of General Surgery Anhui No.2 Provincial People's Hospital Hefei 230041 China) Y Yang Lu S Shu‐Hong Yu (New Cornerstone Science Laboratory Department of Chemistry Institute of Biomimetic Materials and Chemistry Anhui Engineering Laboratory of Biomimetic Materials Division of Nanomaterials and Chemistry Hefei National Research Center for Physical Sciences at the Microscale University of Science and Technology of China Hefei 230026 China)

Abstract

Abstract Colloidal gels (CGs) are attractive carriers for functional nanoparticles (NPs) in biomedical applications. However, the current interfacial design of CG networks often lacks efficient disassembly mechanisms, resulting in limited intelligent responsiveness, constraining their advancements in precision medicine. Herein, we developed an interfacial mineralization strategy to fabricate a mineralized magnetic colloidal gel (MMG) tailored for disassembling in the acidic tumor microenvironment. MMG comprises electrostatically attracted mineralized magnetic core‐shell Fe 3 O 4 @calcium phosphate (CaP) NPs and gelatin NPs, exhibiting outstanding injectability and magnetic‐heating effect, and presenting potential for minimally invasive interventional therapy of tumors. Benefiting from the dissolution of the interfacial CaP layer in an acidic microenvironment, the storage modulus of MMG decreased from 1400 to 400 Pa after 48 h, while the drug‐release efficiency increased from ∼35% to ∼70%. In comparison, the unmineralized magnetic CG showed few changes in mechanical properties and exhibited a low drug‐release efficiency of ∼20%. The acid‐triggered disassembly of MMG's network confirmed the feasibility of precision chemotherapy. Additionally, MMG‐mediated magnetic hyperthermia and chemotherapy significantly improved a synergistic therapeutic effect in tumor‐bearing mice and ultrasound‐guided interventional hepatic tumor rabbits. These findings demonstrate that the interfacial mineralization strategy provides an innovative approach to imparting CG's network with microenvironment‐responsive controllable disassembly behavior.

Article Details

Volume / Issue Vol. 64, Issue 48
Published November 24, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

X

Xingyu Liu

Key Laboratory of Biomedical Polymers Ministry of Education, College of Chemistry and Molecular Sciences

L

Liang Dong

J

Jinlong Hu

Y

Yonghong Song

Key Laboratory of Value‐Added Catalytic Conversion and Reaction Engineering School of Chemistry and Chemical Engineering Hefei University of Technology Hefei 230009 China

X

Xu Yan

Department of Orthopaedics and Traumatology

B

Bing Chen

T

Tao Zhou

College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.

H

Hanye Xing

Key Laboratory of Value‐Added Catalytic Conversion and Reaction Engineering School of Chemistry and Chemical Engineering Hefei University of Technology Hefei 230009 China

B

Baoqiang Cao

Department of General Surgery Anhui No.2 Provincial People's Hospital Hefei 230041 China

Y

Yang Lu

S

Shu‐Hong Yu

New Cornerstone Science Laboratory Department of Chemistry Institute of Biomimetic Materials and Chemistry Anhui Engineering Laboratory of Biomimetic Materials Division of Nanomaterials and Chemistry Hefei National Research Center for Physical Sciences at the Microscale University of Science and Technology of China Hefei 230026 China