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首页> 外文期刊>Biomacromolecules >Eumelanin Buildup on the Nanoscale: Aggregate Growth/Assembly and Visible Absorption Development in Biomimetic 5,6-Dihydroxyindole Polymerization.
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Eumelanin Buildup on the Nanoscale: Aggregate Growth/Assembly and Visible Absorption Development in Biomimetic 5,6-Dihydroxyindole Polymerization.

机译:纳米级的Eumelanin累积:仿生5,6-二羟基吲哚聚合中的聚集生长/组装和可见吸收发展。

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Establishing structure-property relationships in the black insoluble eumelanins, the key determinants of human pigmentation and skin photoprotective system, is a considerable conceptual and experimental challenge in the current drive for elucidation of the biological roles of these biopolymers and their application as advanced materials for organoelectronics. Herein, we report a new breakthrough toward this goal by the first detailed investigation on the nanoscale level of the oxidative polymerization of 5,6-dihydroxyindole (DHI), a model process of eumelanin synthesis. On the basis of a combined use of spectrophotometry, dynamic light scattering (DLS), and small-angle neutron scattering (SANS) investigations, it was possible to unveil the dynamics of the aggregation process before precipitation, the key relationships with visible light absorption and the shape of fundamental aggregates. The results indicated a polymerization mechanism of the type: Polymer_n + DHI_x = Polymer_(n+x), where DHI_x, indicates monomer, dimer, or low oligomers (x < 5). During polymerization, visible absorption increases rapidly, reaching a plateau. Particle growth proceeds slowly, with formation of 2-D structures ~55 nm thick, until precipitation occurs, that is, when large aggregates with a maximum hydrodynamic radius (R_h of ~1200 nm are formed. Notably, markedly smaller R_h values, up to ~110 nm, were determined in the presence of poly(vinyl alcohol) (PVA) that was shown to be an efficient aggregation-preventing agent for polymerizing DHI ensuring water solubilization. Finally, it is shown that DHI monomer can be efficiently and partially irreversibly depleted from aqueous solutions by the addition of eumelanin suspensions. This behavior is suggested to reflect oxidant-independent competing pathways of polymer synthesis and buildup via monomer conversion on the active aggregate surface contributing to particle growth. Besides filling crucial gaps in DHI polymerization, these results support the attractive hypothesis that eumelanins may behave as a peculiar example of living biopolymers. The potential of PVA as a powerful tool for solution chemistry-based investigations of eumelanin supramolecular organization and for technological manipulation purposes is underscored.
机译:在目前不明这些生物聚合物的生物学作用及其作为有机电子高级材料的应用中,建立黑色不溶性双聚乙二醇(人类色素沉着和皮肤光保护系统的关键决定因素)中的结构-性质关系是一项重大的概念和实验挑战。 。在这里,我们通过对5,6-二羟基吲哚(DHI)的氧化聚合反应的纳米级水平的首次详细研究,报告了朝着这一目标的新突破,该合成过程是Eumelanin合成的模型过程。在结合使用分光光度法,动态光散射(DLS)和小角度中子散射(SANS)研究的基础上,有可能揭示沉淀前聚集过程的动力学,与可见光吸收和吸收的关键关系。基本聚集体的形状。结果表明了以下类型的聚合机理:Polymer_n + DHI_x = Polymer_(n + x),其中DHI_x表示单体,二聚物或低聚物(x <5)。在聚合过程中,可见光吸收迅速增加,达到平稳状态。颗粒生长缓慢进行,形成约55 nm厚的2-D结构,直到发生沉淀为止,即形成具有最大流体动力学半径(R_h为〜1200 nm)的大聚集体时。在聚乙烯醇(PVA)的存在下测定了〜110 nm,聚乙烯醇(PVA)是使DHI聚合并确保水溶解的有效防凝剂,最后表明DHI单体可以有效且部分不可逆地发生通过添加木聚糖悬浮液从水溶液中消耗掉这种现象表明该行为反映了独立于氧化剂的竞争性合成和合成过程,该过程通过单体转化在活性聚集体表面上促进了颗粒的生长,除了填补了DHI聚合中的关键空白外,这些结果支持迷人的假设,即Eumelanins可能是活生物聚合物的特例。PVA作为一种强大工具的潜力着重指出了基于溶液化学的双硬脂酸酯超分子组织研究以及用于技术操纵的目的。

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