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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Metal-Phenolic Networks: Emerging Nanoarchitectures for Cancer Therapy
Kecheng Huang1,2, Ran Meng1,2, Bei Li1,2
1Faculty of Medicine, University of Macau, Macau SAR, China.
Abstract:
Cancer is a complicated disease driven by multiple etiologies, necessitating urgent, multimodal, and integrated therapeutic strategies. Coined just over a decade ago, metal-phenolic networks (MPNs) have emerged as broad and powerful platforms, demonstrating great potential in cancer therapy, with broad success achieved in animal models. MPNs are characterized by the network's formation via phenolic ligands and metal ion coordination and serve as versatile drug delivery platforms. Moreover, MPNs not only inherit the inherent pharmacological properties of the building blocks but also acquire new functions during their assembly, including pH responsiveness, photothermal conversion, and redox activity. This review explores the latest advancements and design principles of MPNs in cancer therapy. First, we introduce the building blocks and formation of MPNs and analyze their unique properties and functions. Second, we comprehensively describe various strategies of MPNs in tumor treatment and discuss their potential as a multifunctional treatment platform. Finally, we outline our perspective on the key challenges in translating MPNs to the clinic, with the intention of stimulating the initiation of MPNs-based anti-cancer trials.
Insights
Metal-phenolic networks (MPNs) show promise for cancer therapy by acting as versatile drug delivery platforms. This review highlights their advancements, functions, and potential for clinical translation in treating cancer.
Area of Science:
- Materials Science
- Nanotechnology
- Oncology
Background:
- Cancer is a complex disease requiring integrated therapeutic strategies.
- Metal-phenolic networks (MPNs) are emerging as versatile platforms for cancer therapy.
- MPNs have shown significant success in preclinical animal models.
Purpose of the Study:
- To review the latest advancements and design principles of MPNs in cancer therapy.
- To analyze the unique properties and functions of MPNs.
- To discuss the potential of MPNs as multifunctional platforms for tumor treatment.
Main Methods:
- Review of recent literature on MPNs for cancer therapy.
- Analysis of MPN formation, building blocks, and properties.
- Discussion of various MPN-based therapeutic strategies.
Main Results:
- MPNs are formed via phenolic ligands and metal ion coordination.
- MPNs exhibit unique properties like pH responsiveness, photothermal conversion, and redox activity.
- MPNs can serve as drug delivery platforms, inheriting and acquiring new functions.
Conclusions:
- MPNs offer a promising multifunctional platform for cancer treatment.
- Further research is needed to address challenges in translating MPNs to clinical application.
- Initiation of MPN-based anti-cancer trials is encouraged.
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