Rezki Muhammad, Hossain Md Motaher, Savage Thomas Kouyou, Tokunou Yoshihide, Tsujimura Seiya
Graduate School of Pure and Applied Sciences, University of Tsukuba, 1-1-1, Tennodai, Ibaraki 305-5358, Japan.
Degree Programs in Life and Earth Sciences, University of Tsukuba, 1-1-1, Tennodai, Ibaraki 305-8577, Japan.
Mater Horiz. 2025 Feb 3;12(3):760-769. doi: 10.1039/d4mh01538j.
The efficient immobilization of redox mediators remains a major challenge in the design of mediated enzyme electrode platforms. In addition to stability, the ability of the redox-active material to mediate electron transfer from the active-site buried enzymes, such as flavin adenine dinucleotide-dependent glucose dehydrogenase (FADGDH) and lactate oxidase (LOx), is also crucial. Conventional immobilization techniques can be synthetically challenging, and immobilized mediators often exhibit limited durability, particularly in continuous operation. Here, we design a novel redox-active cobalt-based metal-organic framework (raMOF) obtained the partial ligand substitution of 2-methylimidazole (MeIm) with a 1,2-naphthoquinone-4-sulfonate (NQSO) redox probe, as a promising platform for high-performance enzyme electrodes. This nanostructured raMOF, combined with multi-walled carbon nanotubes (CNTs), provided a high current density of up to 2.06 mA cm during enzymatic reactions and maintained remarkable operational stability, retaining 100% of its current over 54 hours. This stability far exceeded that of adsorbed NQSO on CNTs, which experienced a complete loss of the initial current, highlighting the significant advantage of the raMOF-based platform for high-performance enzyme electrodes.
氧化还原介质的有效固定仍然是介导酶电极平台设计中的一个主要挑战。除了稳定性之外,氧化还原活性材料介导来自活性位点深埋酶(如黄素腺嘌呤二核苷酸依赖性葡萄糖脱氢酶(FADGDH)和乳酸氧化酶(LOx))的电子转移的能力也至关重要。传统的固定技术在合成上可能具有挑战性,并且固定的介质通常表现出有限的耐久性,特别是在连续操作中。在这里,我们设计了一种新型的氧化还原活性钴基金属有机框架(raMOF),它是通过用1,2-萘醌-4-磺酸盐(NQSO)氧化还原探针部分取代2-甲基咪唑(MeIm)配体而获得的,作为高性能酶电极的一个有前途的平台。这种纳米结构的raMOF与多壁碳纳米管(CNT)相结合,在酶促反应期间提供了高达2.06 mA cm的高电流密度,并保持了显著的操作稳定性,在54小时内保持其电流的100%。这种稳定性远远超过了吸附在CNT上的NQSO的稳定性,后者经历了初始电流的完全损失,突出了基于raMOF的平台在高性能酶电极方面的显著优势。