Yang Huiqing, Xu Yan, Hou Qianqian, Xu Qingzhang, Ding Caifeng
Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, Ministry of Education, Shandong Key Laboratory of Biochemical Analysis, Key Laboratory of Analytical Chemistry for Life Science in Universities of Shandong, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, PR China.
Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, Ministry of Education, Shandong Key Laboratory of Biochemical Analysis, Key Laboratory of Analytical Chemistry for Life Science in Universities of Shandong, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, PR China.
Biosens Bioelectron. 2022 Jul 15;208:114216. doi: 10.1016/j.bios.2022.114216. Epub 2022 Mar 25.
A novel ratio electrochemical biosensor based on multi-functional nanocomposite was developed. FeO was synthesized in situ on carboxyl functionalized 2D nanomaterial MXene, and then covalently bonded with [Ru(NH)] to obtain nanocomposites MXC-FeO-Ru. FeO and [Ru(NH)] can neutralize the electronegativity of the MXene to make the nanocomposites electrically neutral. Combine with the good hydrophilicity and conductivity of MXene, the nanocomposites can be utilized to construct antifouling electrochemical biosensors without modifying with specific antifouling materials. Moreover, FeO can endow the nanocomposites with magnetism, and [Ru(NH)] is used as an internal standard molecule. The strong magnetic MXC-FeO-Ru can be easily separated and firmly modified on the magnetic gold electrode (MGE). DNA double-stranded (dsDNA) containing an ferrocene (Fc)-modified carcinoembryonic antigen (CEA) aptamer can be specifically captured to the surface of the electrode by amido bond. In the presence of CEA, CEA binds to the aptamer and leaves the electrode surface, the electrochemical signal of Fc decreases, while the electrochemical signal of [Ru(NH)] is fixed on the electrode surface remains basically unchanged. The ratio of the electrochemical signals of Fc and [Ru(NH)] is proportional to the CEA concentration. The linear range of the sensor is 1 pg/mL to 1 μg/mL with a detection limit of 0.62 pg/mL. With the excellent antifouling performance, good conductivity of the nanocomposite, and the application of the ratiometric strategy, the biosensor can achieve high selectivity, accuracy, and sensitivity for the detection of targets even in complex samples, such as FBS and clinical serum.
基于多功能纳米复合材料开发了一种新型比率电化学生物传感器。在羧基功能化的二维纳米材料MXene上原位合成FeO,然后与[Ru(NH)]共价键合以获得纳米复合材料MXC-FeO-Ru。FeO和[Ru(NH)]可以中和MXene的负电性,使纳米复合材料呈电中性。结合MXene良好的亲水性和导电性,该纳米复合材料可用于构建无需用特定防污材料修饰的防污电化学生物传感器。此外,FeO可赋予纳米复合材料磁性,[Ru(NH)]用作内标分子。强磁性的MXC-FeO-Ru可轻松分离并牢固修饰在磁性金电极(MGE)上。含有二茂铁(Fc)修饰的癌胚抗原(CEA)适配体的DNA双链(dsDNA)可通过酰胺键特异性捕获到电极表面。在CEA存在下,CEA与适配体结合并离开电极表面,Fc的电化学信号降低,而固定在电极表面的[Ru(NH)]的电化学信号基本保持不变。Fc和[Ru(NH)]的电化学信号之比与CEA浓度成正比。该传感器的线性范围为1 pg/mL至1 μg/mL,检测限为0.62 pg/mL。凭借纳米复合材料优异的防污性能、良好的导电性以及比率策略的应用,该生物传感器即使在复杂样品(如胎牛血清和临床血清)中也能实现对目标物的高选择性、准确性和灵敏度检测。