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Cancer cell nucleus-targeting nanocomposites for advanced tumor therapeutics
Limin Pan1, Jianan Liu, Jianlin Shi
1State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, 1295 Ding-Xi Road, Shanghai 200050, China. jlshi@mail.sic.ac.cn.
Abstract:
Tumor therapeutic efficacy is determined, to a great extent, by the delivery efficiency of therapeutic drugs to their final targets. The cell nucleus has been proven to be the main interaction site for most therapeutic agents such as anticancer drugs, genes, free radicals, and heat. Therefore, it is highly expected that cell nucleus-targeting or nuclear membrane-penetrating nanotherapeutics would provide a more effective strategy than ordinary cell membrane-targeting ones for benefiting precise nanomedicine in humans' battles against cancer. This tutorial review presents a summary of the most recent progress achieved in the design, synthesis, and application of cell nucleus-targeting nanotherapeutics. We first discuss a number of design principles involved in cell nucleus-targeting nanotherapeutics, including size control, shape regulation, and surface modification. Next, we demonstrate the diverse applications of cell nucleus-targeting nanotherapeutics ranging from chemotherapy, gene therapy, photodynamic therapy, photothermal therapy to synergistic therapy. Moreover, a number of typical nanotherapeutics designed for enhanced therapeutic efficacy by targeting other subcellular organelles (such as mitochondria, lysosomes, and endoplasmic reticulum) are also briefly discussed. Finally, perspectives and challenges in this research field are proposed, in the hope of accelerating their translation into the clinic.
Insights
Targeting the cell nucleus with nanotherapeutics offers a superior strategy for cancer treatment compared to targeting the cell membrane. This review highlights recent advancements in designing and applying these nucleus-targeting agents for enhanced drug delivery and efficacy.
Area of Science:
- Biomedical Engineering
- Nanomedicine
- Oncology
Background:
- Therapeutic efficacy heavily relies on drug delivery efficiency to target sites.
- The cell nucleus is a primary interaction site for most anticancer agents.
- Nucleus-targeting nanotherapeutics present a promising strategy for improved cancer treatment.
Purpose of the Study:
- To review recent progress in the design, synthesis, and application of cell nucleus-targeting nanotherapeutics.
- To discuss design principles including size, shape, and surface modification.
- To explore diverse therapeutic applications and future challenges.
Main Methods:
- Review of recent literature on nanotherapeutics.
- Analysis of design principles for nucleus targeting.
- Categorization of applications in various cancer therapies.
Main Results:
- Nanotherapeutics targeting the cell nucleus demonstrate enhanced efficacy over cell membrane-targeting agents.
- Key design principles involve precise control over size, shape, and surface properties.
- Applications span chemotherapy, gene therapy, photodynamic, photothermal, and synergistic therapies.
Conclusions:
- Cell nucleus-targeting nanotherapeutics represent a significant advancement in precision nanomedicine for cancer.
- Further research into design, application, and clinical translation is crucial.
- Targeting other organelles like mitochondria and lysosomes also shows therapeutic potential.
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