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通过微波辐射制备的用于单克隆抗体和生物标志物检测的碲化镉/谷胱甘肽量子点的物理化学性质

Physico-Chemical Properties of CdTe/Glutathione Quantum Dots Obtained by Microwave Irradiation for Use in Monoclonal Antibody and Biomarker Testing.

作者信息

Ruiz-Robles M A, Solís-Pomar Francisco J, Travieso Aguilar Gabriela, Márquez Mijares Maykel, Garrido Arteaga Raine, Martínez Armenteros Olivia, Gutiérrez-Lazos C D, Pérez-Tijerina Eduardo G, Fundora Cruz Abel

机构信息

Centro de Investigación en Ciencias Físico Matemáticas, Facultad de Ciencias Físico Matemáticas, Universidad Autónoma de Nuevo León, Av. Universidad s/n, San Nicolás de Los Garza 66455, Nuevo León, Mexico.

Instituto de Ciencia y Tecnología de Materiales (IMRE), Universidad de La Habana, La Habana 10400, Cuba.

出版信息

Nanomaterials (Basel). 2024 Apr 16;14(8):684. doi: 10.3390/nano14080684.

Abstract

In this report, we present the results on the physicochemical characterization of cadmium telluride quantum dots (QDs) stabilized with glutathione and prepared by optimizing the synthesis conditions. An excellent control of emissions and the composition of the nanocrystal surface for its potential application in monoclonal antibody and biomarker testing was achieved. Two samples (QDYellow, QDOrange, corresponding to their emission colors) were analyzed by dynamic light scattering (DLS), and their hydrodynamic sizes were 6.7 nm and 19.4 nm, respectively. Optical characterization by UV-vis absorbance spectroscopy showed excitonic peaks at 517 nm and 554 nm. Photoluminescence spectroscopy indicated that the samples have a maximum intensity emission at 570 and 606 nm, respectively, within the visible range from yellow to orange. Infrared spectroscopy showed vibrational modes corresponding to the functional groups OH-C-H, C-N, C=C, C-O, C-OH, and COOH, which allows for the formation of functionalized QDs for the manufacture of biomarkers. In addition, the hydrodynamic radius, zeta potential, and approximate molecular weight were determined by dynamic light scattering (DLS), electrophoretic light scattering (ELS), and static light scattering (SLS) techniques. Size dispersion and the structure of nanoparticles was obtained by Transmission Electron Microscopy (TEM) and by X-ray diffraction. In the same way, we calculated the concentration of Cd ions expressed in mg/L by using the Inductively Coupled Plasma Atomic Emission Spectrometry (ICP-OES). In addition to the characterization of the nanoparticles, the labeling of murine myeloid cells was carried out with both samples of quantum dots, where it was demonstrated that quantum dots can diffuse into these cells and connect mostly with the cell nucleus.

摘要

在本报告中,我们展示了通过优化合成条件制备的、用谷胱甘肽稳定的碲化镉量子点(QDs)的物理化学表征结果。实现了对纳米晶体表面发射和组成的出色控制,以用于其在单克隆抗体和生物标志物检测中的潜在应用。通过动态光散射(DLS)分析了两个样品(QDYellow、QDOrange,对应于它们的发射颜色),其流体动力学尺寸分别为6.7纳米和19.4纳米。紫外可见吸收光谱的光学表征显示在517纳米和554纳米处有激子峰。光致发光光谱表明,样品分别在570纳米和606纳米处有最大强度发射,在从黄色到橙色的可见光范围内。红外光谱显示了与官能团OH-C-H、C-N、C=C、C-O、C-OH和COOH相对应的振动模式,这允许形成用于制造生物标志物的功能化量子点。此外,通过动态光散射(DLS)、电泳光散射(ELS)和静态光散射(SLS)技术测定了流体动力学半径、zeta电位和近似分子量。通过透射电子显微镜(TEM)和X射线衍射获得了纳米颗粒的尺寸分散和结构。同样,我们使用电感耦合等离子体原子发射光谱法(ICP-OES)计算了以mg/L表示的镉离子浓度。除了对纳米颗粒进行表征外,还用这两种量子点样品对小鼠髓样细胞进行了标记,结果表明量子点可以扩散到这些细胞中,并主要与细胞核相连。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6515/11054025/23847dbda3db/nanomaterials-14-00684-g001.jpg

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