中文版 | English
Title

Remodeling the Tumor Microenvironment with Core-Shell Nanosensitizer Featuring Dual-Modal Imaging and Multimodal Therapy for Breast Cancer

Author
Publication Years
2022
DOI
Source Title
ISSN
1944-8244
EISSN
1944-8252
Abstract
To improve the efficiency of radiation therapy (RT) for breast cancer, a designable multifunctional core-shell nanocomposite of FeP@Pt is constructed using Fe(III)-polydopamine (denoted as FeP) as the core and platinum particles (Pt) as the shell. The hybrid structure is further covered with hyaluronic acid (HA) to give the final nanoplatform of FeP@Pt@HA (denoted as FPH). FPH exhibits good biological stability, prolongs blood circulation time, and is simultaneously endowed with tumor-targeting ability. With CD44-mediated endocytosis of HA, FPH can be internalized by cancer cells and activated by the tumor microenvironment (TME). The redox reaction between Fe3+ in FPH and endogenous glutathione (GSH) or/and hydrogen peroxide (H2O2) initiates ferroptosis therapy by promoting GSH exhaustion and •OH generation. Moreover, FPH has excellent photothermal conversion efficiency and can absorb near-infrared laser energy to promote the above catalytic reaction as well as to achieve photothermal therapy (PTT). Ferroptosis therapy and PTT are further accompanied by the catalase activity of Pt nanoshells to accelerate O2 production and the high X-ray attenuation coefficient of Pt for enhanced radiotherapy (RT). Apart from the therapeutic modalities, FPH exhibits dual-modal contrast enhancement in infrared (IR) thermal imaging and computed tomography (CT) imaging, offering potential in imaging-guided cancer therapy. In this article, the nanoplatform can remodel the TME through the production of O2, GSH- and H2O2-depletion, coenhanced PTT, ferroptosis, and RT. This multimodal nanoplatform is anticipated to shed light on the design of TME-activatable materials to enhance the synergism of treatment results and enable the establishment of efficient nanomedicine.
© 2023 American Chemical Society.
Indexed By
EI ; SCI
Language
English
SUSTech Authorship
Others
Funding Project
This work was supported by the National Natural Science Foundation of China (21874064), the Natural Science Foundation from Guangdong Science and Technology Department of China (2018A030313456), Science and Technology Program of Guangzhou (201904010410).
WOS Accession No
WOS:000913364800001
Publisher
EI Accession Number
20230313388475
EI Keywords
Cancer cells ; Cardiovascular system ; Catalysis ; Chemotherapy ; Computerized tomography ; Conversion efficiency ; Diseases ; Hyaluronic acid ; Infrared devices ; Infrared imaging ; Infrared lasers ; Molecular biology ; Molecular imaging ; Platinum ; Platinum compounds ; Redox reactions ; Shells (structures) ; Tumors
ESI Classification Code
Structural Members and Shapes:408.2 ; Biomedical Engineering:461.1 ; Biological Materials and Tissue Engineering:461.2 ; Medicine and Pharmacology:461.6 ; Biology:461.9 ; Energy Conversion Issues:525.5 ; Precious Metals:547.1 ; Radioactive Material Applications:622.3 ; Computer Applications:723.5 ; Lasers, General:744.1 ; Imaging Techniques:746 ; Chemical Reactions:802.2 ; Organic Compounds:804.1
Data Source
EV Compendex
Citation statistics
Cited Times [WOS]:2
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/519747
DepartmentSouthern University of Science and Technology Hospital
Affiliation
1.Department of Medical Imaging, Third Affiliated Hospital of Southern Medical University (Academy of Orthopedics Guangdong Province), Southern Medical University, Guangdong, Guangzhou; 510630, China
2.NMPA Key Laboratory for Research and Evaluation of Drug Metabolism, Guangdong Provincial Key Laboratory of New Drug Screening, School of Pharmaceutical Sciences, Southern Medical University, Guangdong, Guangzhou; 510515, China
3.Southern University of Science and Technology Hospital, Shenzhen; 51805, China
4.College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Jiangsu, Suzhou; 215123, China
Recommended Citation
GB/T 7714
Hou, Ying-Ke,Zhang, Zi-Jian,Li, Rong-Tian,et al. Remodeling the Tumor Microenvironment with Core-Shell Nanosensitizer Featuring Dual-Modal Imaging and Multimodal Therapy for Breast Cancer[J]. ACS Applied Materials & Interfaces,2022.
APA
Hou, Ying-Ke.,Zhang, Zi-Jian.,Li, Rong-Tian.,Peng, Jian.,Chen, Si-Yu.,...&Zhou, Quan.(2022).Remodeling the Tumor Microenvironment with Core-Shell Nanosensitizer Featuring Dual-Modal Imaging and Multimodal Therapy for Breast Cancer.ACS Applied Materials & Interfaces.
MLA
Hou, Ying-Ke,et al."Remodeling the Tumor Microenvironment with Core-Shell Nanosensitizer Featuring Dual-Modal Imaging and Multimodal Therapy for Breast Cancer".ACS Applied Materials & Interfaces (2022).
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