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适配体与电化学适配体传感器对硒酸盐离子(SeO)的研究。

Aptamer and Electrochemical Aptasensor towards Selenate Ions (SeO).

机构信息

Chair of Medical Biotechnology, Faculty of Chemistry, Warsaw University of Technology, Stanisława Noakowskiego 3, 00-664 Warsaw, Poland.

Doctoral School, Warsaw University of Technology, Plac Politechniki 1, 00-661 Warsaw, Poland.

出版信息

Int J Mol Sci. 2024 Jun 17;25(12):6660. doi: 10.3390/ijms25126660.

Abstract

Selenium is an essential inorganic compound in human and animal nutrition, involved in the proper functioning of the body. As a micronutrient, it actively contributes to the regulation of various metabolic activities, i.e., thyroid hormone, and protection against oxidative stress. However, Se exhibits a narrow concentration window between having a positive effect and exerting a toxic effect. In higher doses, it negatively affects living organisms and causes DNA damage through the formation of free radicals. Increased reactivity of Se anions can also disrupt the integrity and function of DNA-repairing proteins. As the permissible concentration of Se in drinking water is 10 µg/L, it is vital to develop sensitive and robust methods of Se detection in aqueous samples. In this study, for the first time, we proposed a selective aptamer for selenate ion detection, chosen following the SELEX process, and its application in the construction of an electrochemical aptasensor towards SeO ions. Measurement conditions such as the used redox marker and pH value of the measurement solution were chosen. The proposed aptasensor is characterized by good selectivity and an LOD of 1 nM. Conditions for biosensor regeneration and storage were also investigated in this research.

摘要

硒是人和动物营养中的一种必需无机化合物,参与身体的正常功能。作为一种微量元素,它积极参与各种代谢活动的调节,如甲状腺激素的调节和氧化应激的保护。然而,硒在具有积极作用和发挥毒性作用之间存在一个狭窄的浓度窗口。在较高剂量下,它会通过形成自由基对生物体产生负面影响,并导致 DNA 损伤。硒阴离子的反应性增加也会破坏 DNA 修复蛋白的完整性和功能。由于饮用水中硒的允许浓度为 10μg/L,因此开发用于水样中硒检测的灵敏而强大的方法至关重要。在这项研究中,我们首次提出了一种用于检测硒酸盐离子的选择性适配体,该适配体是通过 SELEX 过程选择的,并将其应用于构建针对 SeO 离子的电化学适体传感器。选择了使用的氧化还原标记物和测量溶液的 pH 值等测量条件。所提出的适体传感器具有良好的选择性和 1 nM 的检测限。本研究还研究了生物传感器的再生和储存条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df01/11203472/5cdf5d0031b9/ijms-25-06660-g001.jpg

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