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多壁碳纳米管功能化的新席夫碱含有苯硼酸残基:应用于使用响应面方法学开发双酶葡萄糖生物传感器。

Multi-walled carbon nanotubes functionalized with a new Schiff base containing phenylboronic acid residues: application to the development of a bienzymatic glucose biosensor using a response surface methodology approach.

机构信息

CIQA, CONICET, Departamento de Ingeniería Química, Facultad Regional Córdoba, Universidad Tecnológica Nacional, Maestro López esq. Cruz Roja Argentina, 5016, Córdoba, Argentina.

Departamento de Fisicoquímica, Facultad de Ciencias Químicas, INFIQC, CONICET-UNC, Universidad Nacional de Córdoba, Ciudad Universitaria, 5000, Córdoba, Argentina.

出版信息

Mikrochim Acta. 2024 Aug 23;191(9):558. doi: 10.1007/s00604-024-06608-6.

Abstract

An innovative supramolecular architecture is reported for bienzymatic glucose biosensing based on the use of a nanohybrid made of multi-walled carbon nanotubes (MWCNTs) non-covalently functionalized with a Schiff base modified with two phenylboronic acid residues (SB-dBA) as platform for the site-specific immobilization of the glycoproteins glucose oxidase (GOx) and horseradish peroxidase (HRP). The analytical signal was obtained from amperometric experiments at - 0.050 V in the presence of 5.0 × 10 M hydroquinone as redox mediator. The concentration of GOx and HRP and the interaction time between the enzymes and the nanohybrid MWCNT-SB-dBA deposited at glassy carbon electrodes (GCEs) were optimized through a central composite design (CCD)/response surface methodology (RSM). The optimal concentrations of GOx and HRP were 3.0 mg mL and 1.50 mg mL, respectively, while the optimum interaction time was 3.0 min. The bienzymatic biosensor presented a sensitivity of (24 ± 2) × 10 µA dL mg ((44 ± 4) × 10 µA M), a linear range between 0.06 mg dL and 21.6 mg dL (3.1 µM-1.2 mM) (R = 0.9991), and detection and quantification limits of 0.02 mg dL (1.0 µM) and 0.06 mg dL (3.1 µM), respectively. The reproducibility for five sensors prepared with the same MWCNT-SB-dBA nanohybrid was 6.3%, while the reproducibility for sensors prepared with five different nanohybrids and five electrodes each was 7.9%. The GCE/MWCNT-SB-dBA/GOx-HRP was successfully used for the quantification of glucose in artificial human urine and commercial human serum samples.

摘要

一种基于多壁碳纳米管(MWCNT)的纳米杂化材料的新颖超分子结构被报道用于双酶葡萄糖生物传感,该纳米杂化材料通过席夫碱与两个苯硼酸残基(SB-dBA)非共价功能化,作为固定糖蛋白葡萄糖氧化酶(GOx)和辣根过氧化物酶(HRP)的平台。在存在 5.0×10-5 M 对苯二酚作为氧化还原介体的情况下,通过安培实验在-0.050 V 处获得分析信号。通过中心复合设计(CCD)/响应面法(RSM)优化了玻碳电极(GCE)上沉积的 GOx 和 HRP 的浓度以及酶与纳米杂化 MWCNT-SB-dBA 的相互作用时间。GOx 和 HRP 的最佳浓度分别为 3.0 mg mL 和 1.50 mg mL,而最佳相互作用时间为 3.0 min。双酶生物传感器的灵敏度为(24±2)×10 µA dL mg-1((44±4)×10 µA M),线性范围在 0.06 mg dL 和 21.6 mg dL 之间(3.1 µM-1.2 mM)(R=0.9991),检测限和定量限分别为 0.02 mg dL(1.0 µM)和 0.06 mg dL(3.1 µM)。用相同的 MWCNT-SB-dBA 纳米杂化材料制备的五个传感器的重现性为 6.3%,而用五个不同的纳米杂化材料和每个电极制备的五个传感器的重现性为 7.9%。GCE/MWCNT-SB-dBA/GOx-HRP 成功用于人工尿液和商业血清样本中葡萄糖的定量。

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