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新型高产金纳米粒子的微合成方法,加速生物传感和其他生物应用研究。

Novel Microsynthesis of High-Yield Gold Nanoparticles to Accelerate Research in Biosensing and Other Bioapplications.

机构信息

Facultad de Ingeniería, Arquitectura y Diseño, Universidad San Sebastián, Lientur 1457, Concepción 4080871, Chile.

出版信息

Biosensors (Basel). 2023 Nov 21;13(12):992. doi: 10.3390/bios13120992.

Abstract

Gold nanoparticles (AuNPs) exhibit unique properties that make them appealing for applications in biosensing and other emerging fields. Despite the availability of numerous synthesis methods, important questions remain to be addressed regarding the volume effect on the synthesis yield and quality of AuNPs in the light of biosensing research. The present study addresses these issues by developing a novel microvolumetric citrate-reduction method to improve the synthesis of AuNPs, which were characterized by electronic microscopy, energy dispersive spectroscopy, zeta potential and colorimetric analysis. A comparison of the novel microsynthesis method with the standard Turkevich method demonstrated its superior performance in terms of yield, monodispersity, rapidity (in one step), reproducibility, and stability. The analytical behavior of AuNPs-based aptasensors prepared by microsynthesis was investigated using kanamycin detection and showed higher reproducibility and improved detection limits (3.4 times) compared to those of Turkevich AuNPs. Finally, the effect of pH was studied to demonstrate the suitability of the method for the screening of AuNP synthesis parameters that are of direct interest in biosensing research; the results showed an optimal pH range between 5.0 and 5.5. In summary, the approach described herein has the potential to improve research capabilities in biosensing, with the added benefits of lowering costs and minimizing waste generation in line with current trends in green nanotechnology.

摘要

金纳米粒子(AuNPs)具有独特的性质,使其在生物传感和其他新兴领域的应用中具有吸引力。尽管有许多合成方法,但在生物传感研究中,关于 AuNPs 合成产量和质量的体积效应仍有一些重要问题需要解决。本研究通过开发一种新的微体积柠檬酸盐还原法来解决这些问题,该方法通过电子显微镜、能量色散光谱、ζ电位和比色分析对 AuNPs 的合成进行了表征。将新型微合成方法与标准的 Turkevich 方法进行比较,证明其在产量、单分散性、快速性(一步法)、重现性和稳定性方面具有优越的性能。通过使用卡那霉素检测研究了基于 AuNPs 的适体传感器的分析行为,与 Turkevich AuNPs 相比,其具有更高的重现性和改进的检测限(3.4 倍)。最后,研究了 pH 值的影响,以证明该方法适用于筛选直接与生物传感研究相关的 AuNP 合成参数;结果表明,在 5.0 到 5.5 之间存在最佳 pH 范围。总之,本文所述的方法有可能提高生物传感研究能力,同时降低成本并符合绿色纳米技术的当前趋势,减少废物产生。

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