Multifunctional polydopamine-based nanoparticles: synthesis, physico-chemical properties and applications for bimodal photothermal/photodynamic therapy of cancer

Q1 Materials Science Multifunctional Materials Pub Date : 2021-03-22 DOI:10.1088/2399-7532/abf0fa
Islam Zmerli, J. Michel, A. Makky
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引用次数: 12

Abstract

Polydopamine (PDA) is a mussel-inspired and a melanin-mimicking material that has attracted considerable attention during the recent years. This ‘polymer’ displays diverse promising properties, like its simple preparation procedures, easy functionalization, free radicals scavenging activity, outstanding photothermal and photoacoustic performance, and its great biocompatibility and biodegradability. A remarkable feature of PDA is its ability to form colloidal nanosized particles or nanoscaled coatings, allowing the preparation of various nanoparticulate structures. The first studies into PDA mainly explored the polymerization mechanisms of this material and the development of controlled preparation protocols. Later works focused on the investigation of these nanomaterials for the design and development of multifunctional platforms and their implementation in multiple biomedical fields, particularly in cancer treatment and bio-imaging. The purpose of this review is to (a) give a detailed overview about the synthesis methods of PDA and the formation mechanisms proposed so far in the literature, (b) outline the remarkable physico-chemical and functional properties of PDA nanomaterials, and (c) summarize the application of PDA-derived nanosystems in cancer theranostics and particularly in drug delivery and light-mediated cancer therapy with a special emphasis on the different strategies that can be used for the design of smart nanosystems with bimodal photothermal/photodynamic properties. Finally, a comparison of physicochemical properties and biomedical applications between PDA and other catecholamine derivatives is made.
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多功能聚多巴胺纳米粒子的合成、理化性质及其在癌症双峰光热/光动力治疗中的应用
聚多巴胺(PDA)是一种受贻贝启发的模仿黑色素的材料,近年来引起了人们的极大关注。这种“聚合物”表现出多种有前景的特性,如其简单的制备程序、易于功能化、清除自由基的活性、优异的光热和光声性能,以及良好的生物相容性和生物降解性。PDA的一个显著特征是它能够形成胶体纳米颗粒或纳米涂层,从而可以制备各种纳米颗粒结构。PDA的首次研究主要探讨了该材料的聚合机理和控制制备方案的开发。后来的工作重点是研究这些纳米材料,以设计和开发多功能平台,并将其应用于多个生物医学领域,特别是癌症治疗和生物成像。这篇综述的目的是(a)详细概述迄今为止文献中提出的PDA的合成方法和形成机制,(b)概述PDA纳米材料的显著物理化学和功能特性,和(c)总结了PDA衍生的纳米系统在癌症治疗中的应用,特别是在药物递送和光介导的癌症治疗中,特别强调了可用于设计具有双峰光热/光动力特性的智能纳米系统的不同策略。最后,对PDA和其他儿茶酚胺衍生物的理化性质及生物医学应用进行了比较。
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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