阳离子肽诱导金纳米粒子组装的机理:静电斥力的调制

IF 13.7 Q1 CHEMISTRY, MULTIDISCIPLINARY
Benjamin Lam, Robert Ramji, Margaret Mullooly, Kristina D. Closser, Tod A. Pascal, Jesse V. Jokerst
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引用次数: 0

摘要

等离子体纳米粒子的聚集可以导致新的和可控制的性质,对许多应用有用。我们最近展示了金纳米颗粒(AuNPs)通过一个小的、阳离子的二精氨酸肽的可逆聚集;然而,这种聚集背后的机制尚未被全面理解。在这里,我们通过经验测量肽身份如何影响AuNP聚集,寻求深入了解阳离子肽诱导柠檬酸盐覆盖的AuNP组装的分子间相互作用。我们通过紫外-可见光谱研究了肽与AuNP之间的纳米级相互作用,以确定肽长度和电荷对AuNP聚集的结构-功能关系。仔细调整二精氨酸肽的序列表明,组装机制是由静电排斥的减少驱动的。我们发现乙酰化的n端和羧酸c端降低了肽诱导AuNP聚集的有效性。通过添加甘氨酸或脯氨酸单位而增加的肽大小阻碍了聚集并导致较少的红移。以精氨酸为基础的肽也被发现比同等长度的半胱氨酸为基础的肽更有效地组装aunp。我们还说明了聚合与肽立体化学无关。最后,我们证明了通过改变pH值、盐浓度和温度来调节肽- aunp行为。值得注意的是,基于组氨酸和酪氨酸的肽可以根据pH值可逆地聚集aunp。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mechanism of Cationic Peptide-Induced Assembly of Gold Nanoparticles: Modulation of Electrostatic Repulsion

Mechanism of Cationic Peptide-Induced Assembly of Gold Nanoparticles: Modulation of Electrostatic Repulsion

The aggregation of plasmonic nanoparticles can lead to new and controllable properties useful for numerous applications. We recently showed the reversible aggregation of gold nanoparticles (AuNPs) via a small, cationic di-arginine peptide; however, the mechanism underlying this aggregation is not yet comprehensively understood. Here, we seek insights into the intermolecular interactions of cationic peptide-induced assembly of citrate-capped AuNPs by empirically measuring how peptide identity impacts AuNP aggregation. We examined the nanoscale interactions between the peptides and the AuNPs via UV-vis spectroscopy to determine the structure-function relationship of peptide length and charge on AuNP aggregation. Careful tuning of the sequence of the di-arginine peptide demonstrated that the mechanism of assembly is driven by a reduction in electrostatic repulsion. We show that acetylated N-terminals and carboxylic acid C-terminals decrease the effectiveness of the peptide in inducing AuNP aggregation. The increase in peptide size through the addition of glycine or proline units hinders aggregation and leads to less redshift. Arginine-based peptides were also found to be more effective in assembling the AuNPs than cysteine-based peptides of equivalent length. We also illustrate that aggregation is independent of peptide stereochemistry. Finally, we demonstrate the modulation of peptide-AuNP behavior through changes to the pH, salt concentration, and temperature. Notably, histidine-based and tyrosine-based peptides could reversibly aggregate the AuNPs in response to the pH.

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CiteScore
17.40
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