Cho Tae Joon, MacCuspie Robert I, Gigault Julien, Gorham Justin M, Elliott John T, Hackley Vincent A
Materials Measurement Science Division and ‡Biosystems and Biomaterials Division, National Institute of Standards and Technology , Gaithersburg, Maryland 20899, United States.
Langmuir. 2014 Apr 8;30(13):3883-93. doi: 10.1021/la5002013. Epub 2014 Mar 25.
We report the development of a novel cationic dendron (TAG1-PCD) and a positively charged gold nanoparticle-dendron conjugate (PCD-AuNP). TAG1-PCD was designed by considering the reactivity, hydrophilicity, and cationic nature that is required to yield a stable gold conjugate in aqueous media. The PCD-AuNPs, nominally 10 nm in size, were synthesized by reduction of chloroauric acid in the presence of TAG1-PCD. The physicochemical properties of PCD-AuNPs were characterized by dynamic light scattering, transmission electron microscopy, UV-vis absorbance, and X-ray photoelectron spectroscopy for investigation of size distribution, shape uniformity, surface plasmon resonance bands, and Au-dendron bonding. Asymmetric-flow field flow fractionation was employed to confirm the in situ size, purity, and surface properties of the PCD-AuNPs. Additionally, the stability of PCD-AuNPs was systematically evaluated with respect to shelf life determination, stability in biological media and a wide range of pH values, chemical resistance against cyanide, redispersibility from lyophilized state, and stability at temperatures relevant to biological systems. Dose dependent cell viability was evaluated in vitro using the human lung epithelial cell line A549 and a monkey kidney Vero cell line. Observations from in vitro studies are discussed. Overall, the investigation confirmed the successful development of stable PCD-AuNPs with excellent stability in biologically relevant test media containing proteins and electrolytes, and with a shelf life exceeding 6 months. The excellent aqueous stability and apparent lack of toxicity for this conjugate enhances its potential use as a test material for investigating interactions between positively charged NPs and biocellular and biomolecular systems, or as a vehicle for drug delivery.
我们报道了一种新型阳离子树枝状分子(TAG1-PCD)和一种带正电荷的金纳米颗粒-树枝状分子共轭物(PCD-AuNP)的研发情况。设计TAG1-PCD时考虑了在水性介质中生成稳定金共轭物所需的反应活性、亲水性和阳离子性质。通过在TAG1-PCD存在下还原氯金酸合成了标称尺寸为10 nm的PCD-AuNP。采用动态光散射、透射电子显微镜、紫外-可见吸收光谱和X射线光电子能谱对PCD-AuNP的物理化学性质进行了表征,以研究其尺寸分布、形状均匀性、表面等离子体共振带和金-树枝状分子键合情况。采用不对称流场流分馏法来确认PCD-AuNP的原位尺寸、纯度和表面性质。此外,还系统评估了PCD-AuNP在保质期测定、生物介质和广泛pH值范围内的稳定性、对氰化物的化学抗性、冻干状态下的再分散性以及与生物系统相关温度下的稳定性。使用人肺上皮细胞系A549和猴肾Vero细胞系在体外评估了剂量依赖性细胞活力。讨论了体外研究的观察结果。总体而言本研究证实成功开发出了稳定的PCD-AuNP,其在含有蛋白质和电解质的生物相关测试介质中具有出色的稳定性,保质期超过6个月。这种共轭物出色的水性稳定性和明显的低毒性增强了其作为研究带正电荷纳米颗粒与生物细胞和生物分子系统之间相互作用的测试材料或作为药物递送载体的潜在用途。