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超稳定的 NAC 封端的 CdZnTe 量子点封装在树枝状介孔硅中,作为具有信号放大的抗干扰荧光适体传感器的优异标记。

Ultrastable NAC-Capped CdZnTe Quantum Dots Encapsulated within Dendritic Mesoporous Silica As an Exceptional Tag for Anti-Interference Fluorescence Aptasensor with Signal Amplification.

机构信息

School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, People's Republic of China.

School of Food and Biological Engineering, Jiangsu University, Zhenjiang 212013, People's Republic of China.

出版信息

Anal Chem. 2024 Sep 10;96(36):14550-14559. doi: 10.1021/acs.analchem.4c02826. Epub 2024 Aug 24.

Abstract

In this work, we explored the potential of thiol-capped CdZnTe quantum dots (QDs) as an exceptional signal tag for fluorescence aptasensing applications. Employing a one-pot hydrothermal approach, we modulated the terminal functional groups of CdZnTe QDs using l-cysteine (Lcys), 3-mercaptopropionic acid (MPA), and N-acetyl-l-cysteine (NAC) as ligands. Our comparative analysis revealed that NAC-capped CdZnTe QDs (NAC-CdZnTe QDs) exhibited superior anti-interference capabilities and storage stability across various temperatures, pH levels, and storage durations. Encouraged by these promising results, we further optimized the use of ultrastable NAC-CdZnTe QDs encapsulated in dendritic mesoporous silica nanoparticles (DMSN@QDs) as an exceptional tag for the development of an advanced anti-interference fluorescence aptasensor for aflatoxin B1 (AFB1) detection. The developed aptasensor using DMSN@QDs as signal tags achieved a remarkable signal amplification of approximately 10.2 fold compared to the NAC-CdZnTe QDs coated silica (SiO@QDs) labeled fluorescence aptasensor. This aptasensor was able to detect AFB1 within a wide range of 1 pg mL to 200 ng mL, achieving a limit of detection as low as 0.41 pg mL (S/N = 3). Crucially, the specific binding affinity between the aptamer and the target enabled the aptasensor to be easily customized for various targets by simply replacing the aptamer sequence with the desired one. The exceptional potential of NAC-CdZnTe QDs, particularly when encapsulated in DMSNs, leads to the development of highly sensitive and selective anti-interference fluorescence aptasensors for various targets, thereby, paving the way for advancements in a diverse range of applications.

摘要

在这项工作中,我们探索了巯基封端的 CdZnTe 量子点 (QDs) 作为荧光适体传感应用中一种极好的信号标记物的潜力。我们采用一锅水热法,使用 L-半胱氨酸 (Lcys)、3-巯基丙酸 (MPA) 和 N-乙酰-L-半胱氨酸 (NAC) 作为配体来调节 CdZnTe QDs 的末端官能团。我们的比较分析表明,NAC 封端的 CdZnTe QDs (NAC-CdZnTe QDs) 在各种温度、pH 值和储存时间下表现出优异的抗干扰能力和储存稳定性。受这些有希望的结果的鼓舞,我们进一步优化了使用超稳定的 NAC-CdZnTe QDs 封装在树枝状介孔硅纳米粒子 (DMSN@QDs) 中作为开发用于检测黄曲霉毒素 B1 (AFB1) 的先进抗干扰荧光适体传感器的极好标记物。使用 DMSN@QDs 作为信号标记物的开发的适体传感器与用 NAC-CdZnTe QDs 涂覆的硅 (SiO@QDs) 标记的荧光适体传感器相比,实现了约 10.2 倍的显著信号放大。该适体传感器能够在 1 pg mL 至 200 ng mL 的宽范围内检测 AFB1,检测限低至 0.41 pg mL (S/N = 3)。至关重要的是,适体与目标之间的特异性结合亲和力使得通过简单地用所需的适体序列替换适体序列,很容易将适体传感器定制用于各种目标。NAC-CdZnTe QDs 的特殊潜力,特别是当封装在 DMSNs 中时,为开发用于各种目标的高灵敏度和选择性抗干扰荧光适体传感器铺平了道路,从而为广泛的应用领域的发展提供了可能。

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