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聚多巴胺组装和黏附在纳米界面上的干预:最新设计和生物医学应用。

Intervention of Polydopamine Assembly and Adhesion on Nanoscale Interfaces: State-of-the-Art Designs and Biomedical Applications.

机构信息

Key Laboratory of Biorheological Science and Technology, Ministry of Education, College of Bioengineering, Chongqing University, No. 174 Shazheng Road, Chongqing, 400044, China.

出版信息

Adv Healthc Mater. 2021 May;10(9):e2002138. doi: 10.1002/adhm.202002138. Epub 2021 Mar 9.

DOI:10.1002/adhm.202002138
PMID:33690982
Abstract

The translation of mussel-inspired wet adhesion to biomedical engineering fields have catalyzed the emergence of polydopamine (PDA)-based nanomaterials with privileged features and properties of conducting multiple interfacial interactions. Recent concerns and progress on the understanding of PDA's hierarchical structure and progressive assembly are inspiring approaches toward novel nanostructures with property and function advantages over simple nanoparticle architectures. Major breakthroughs in this field demonstrated the essential role of π-π stacking and π-cation interactions in the rational intervention of PDA self-assembly. In this review, the recently emerging concepts in the preparation and application of PDA nanomaterials, including 3D mesostructures, low-dimensional nanostructures, micelle/nanoemulsion based nanoclusters, as well as other multicomponent nanohybrids by the segregation and organization of PDA building blocks on nanoscale interfaces are outlined. The contribution of π-electron interactions on the interfacial loading/release of π electron-rich molecules (nucleic acids, drugs, photosensitizers) and the exogenous coupling of optical energy, as well as the impact of wet-adhesion interactions on the nano-bio interface interplay, are highlighted by discussing the structure-property relationships in their featured applications including fluorescent biosensing, gene therapy, drug delivery, phototherapy, combined therapy, etc. The limitations of current explorations, and future research directions are also discussed.

摘要

贻贝启发的湿黏附转化为生物医学工程领域,促进了聚多巴胺(PDA)基纳米材料的出现,这些材料具有优越的多功能界面相互作用的特性和性能。近期对 PDA 分级结构和渐进组装的理解的关注和进展,为具有优于简单纳米颗粒结构的性能和功能的新型纳米结构提供了灵感。该领域的重大突破证明了π-π 堆积和π-阳离子相互作用在合理干预 PDA 自组装中的重要作用。在这篇综述中,概述了 PDA 纳米材料的制备和应用中最近出现的概念,包括 3D 介观结构、低维纳米结构、胶束/纳米乳液基纳米团簇以及其他多组分纳米杂化物,这些都是通过 PDA 构筑块在纳米尺度界面上的分离和组织实现的。通过讨论其在荧光生物传感、基因治疗、药物传递、光疗、联合治疗等特色应用中结构-性能关系,强调了π-电子相互作用对π电子富分子(核酸、药物、光敏剂)的界面加载/释放以及光能量的外源偶联的贡献,以及湿黏附相互作用对纳米-生物界面相互作用的影响。还讨论了当前探索的局限性和未来的研究方向。

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