Tumor Microenvironment–Activated Nanostructure to Enhance MRI Capability and Nanozyme Activity for Highly Tumor‐Specific Multimodal Theranostics

Author:

Xie Wenteng12,Gan Yuehao12,Wang Lulu3,Si Yuanchun4,Li Qingdong12,Song Tianwei5,Wei Pengfei5,Wu Zhengyan12,Zhang Guilong5ORCID

Affiliation:

1. Key Laboratory of High Magnetic Field and Ion Beam Physical Biology Hefei Institutes of Physical Science Chinese Academy of Sciences Hefei 230031 P. R. China

2. University of Science and Technology of China Hefei 230026 P. R. China

3. High Magnetic Field Laboratory Hefei Institutes of Physical Science Chinese Academy of Sciences Hefei Anhui 230031 China

4. Stomatologic Hospital and College Key Laboratory of Oral Diseases Research of Anhui Province Anhui Medical University Hefei 230032 P.R. China

5. School of Pharmacy Shandong Technology Innovation Center of Molecular Targeting and Intelligent Diagnosis and Treatment Binzhou Medical University Yantai 264003 P. R. China

Abstract

AbstractCopper‐based nanozymes exhibit excellent antitumor activity but are easily inactivated due to the disturbance of proteins or other macromolecules with sulfhydryl. A tumor microenvironment‐responsive CuMnO@Fe3O4 (CMF) core–shell nanozyme for highly efficient tumor theranostics is developed. A platelet‐derived growth factor receptor‐β‐recognizing cyclic peptide (PDGFB) target is conjugated to the surface of CMF to fabricate a tumor‐specific nanozyme (PCMF). The core–shell nanostructure significantly avoids the oxidation and inactivation of copper‐based nanozyme, promoting the antitumor activity of PCMF. The weak acid‐ and GSH‐activated T1 and T2 relaxation rate of PCMF contributes to T1 and T2 dual contrast imaging at the tumor site. In addition, the PCMF disintegrates and produces some metal ions that possess Fenton catalytic activity (i.e., Cu+, Mn2+, and Fe2+) under TME. This process significantly depletes GSH, accelerates Fenton and Fenton‐like reactions, enhances cellular reactive oxygen species (ROS) levels, and induces cancer cell apoptosis and ferroptosis. PCMF also exhibits photothermal functions, so it can be used in combined photothermal therapy, ferroptosis therapy, and chemodynamic therapy, improving anticancer activity. This work provides insights into the design of an exquisite nanostructure for high‐sensitive and tumor‐specific theranostics.

Funder

Key Technology Research and Development Program of Shandong Province

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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