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聚多巴胺和真黑素:从结构-性能关系到统一的调控策略。

Polydopamine and eumelanin: from structure-property relationships to a unified tailoring strategy.

机构信息

Department of Chemical Sciences, University of Naples Federico II , Via Cintia 4, I-80126 Naples, Italy.

出版信息

Acc Chem Res. 2014 Dec 16;47(12):3541-50. doi: 10.1021/ar500273y. Epub 2014 Oct 23.

Abstract

CONSPECTUS

Polydopamine (PDA), a black insoluble biopolymer produced by autoxidation of the catecholamine neurotransmitter dopamine (DA), and synthetic eumelanin polymers modeled to the black functional pigments of human skin, hair, and eyes have burst into the scene of materials science as versatile bioinspired functional systems for a very broad range of applications. PDA is characterized by extraordinary adhesion properties providing efficient and universal surface coating for diverse settings that include drug delivery, microfluidic systems, and water-treatment devices. Synthetic eumelanins from dopa or 5,6-dihydroxyindoles are the focus of increasing interest as UV-absorbing agents, antioxidants, free radical scavengers, and water-dependent hybrid electronic-ionic semiconductors. Because of their peculiar physicochemical properties, eumelanins and PDA hold considerable promise in nanomedicine and bioelectronics, as they are biocompatible, biodegradable, and exhibit suitable mechanical properties for integration with biological tissues. Despite considerable similarities, very few attempts have so far been made to provide an integrated unifying perspective of these two fields of technology-oriented chemical research, and progress toward application has been based more on empirical approaches than on a solid conceptual framework of structure-property relationships. The present Account is an attempt to fill this gap. Following a vis-à-vis of PDA and eumelanin chemistries, it provides an overall view of the various levels of chemical disorder in both systems and draws simple correlations with physicochemical properties based on experimental and computational approaches. The potential of large-scale simulations to capture the macroproperties of eumelanin-like materials and their hierarchical structures, to predict the physicochemical properties of new melanin-inspired materials, to understand the structure-property-function relationships of these materials from the bottom up, and to design and optimize materials to achieve desired properties is illustrated. The impact of synthetic conditions on melanin structure and physicochemical properties is systematically discussed for the first time. Rational tailoring strategies directed to critical control points of the synthetic pathways, such as dopaquinone, DAquinone, and dopachrome, are then proposed, with a view to translating basic chemical knowledge into practical guidelines for material manipulation and tailoring. This key concept is exemplified by the recent demonstration that varying DA concentration, or using Tris instead of phosphate as the buffer, results in PDA materials with quite different structural properties. Realizing that PDA and synthetic eumelanins belong to the same family of functional materials may foster unprecedented synergisms between research fields that have so far been apart in the pursuit of tailorable and marketable materials for energy, biomedical, and environmental applications.

摘要

概述

聚多巴胺(PDA)是儿茶酚胺神经递质多巴胺(DA)自氧化产生的一种不溶性黑色生物聚合物,以及模拟人类皮肤、头发和眼睛的黑色功能色素的合成真黑素聚合物,它们作为多功能仿生功能系统,在包括药物输送、微流控系统和水处理装置在内的各种应用中突然崭露头角。PDA 的特点是具有非凡的粘附特性,可为各种环境提供高效且通用的表面涂层。多巴或 5,6-二羟基吲哚合成的真黑素是越来越受关注的紫外线吸收剂、抗氧化剂、自由基清除剂和水依赖性混合电子-离子半导体。由于其独特的物理化学性质,真黑素和 PDA 在纳米医学和生物电子学领域具有很大的应用潜力,因为它们具有生物相容性、可生物降解性,并具有适合与生物组织集成的合适机械性能。尽管有许多相似之处,但迄今为止,很少有人试图为这两个面向技术的化学研究领域提供一个综合统一的视角,而且应用进展更多地基于经验方法,而不是基于结构-性质关系的坚实概念框架。本综述旨在填补这一空白。在比较了 PDA 和真黑素化学之后,它提供了这两个系统中各种化学无序程度的整体视图,并根据实验和计算方法与物理化学性质进行了简单的相关性分析。大规模模拟在捕获类似真黑素材料的宏观特性及其层次结构、预测新的黑色素启发材料的物理化学性质、从底层理解这些材料的结构-性质-功能关系以及设计和优化材料以实现所需性能方面的潜力。本文首次系统地讨论了合成条件对黑色素结构和物理化学性质的影响。然后提出了针对合成途径关键控制点(如多巴醌、DA 醌和多巴色素)的合理剪裁策略,以期将基础化学知识转化为材料操作和剪裁的实用指南。这一关键概念通过最近的一项演示得到了例证,即改变 DA 浓度,或使用三羟甲基氨基甲烷而不是磷酸盐作为缓冲液,可得到具有完全不同结构特性的 PDA 材料。认识到 PDA 和合成真黑素属于同一类功能材料,可以促进迄今为止在可定制和适销材料的追求方面相互分离的研究领域之间前所未有的协同作用,这些材料可用于能源、生物医学和环境应用。

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