Gu Chengcheng, Bai Lipeng, Pu Li, Gai Panpan, Li Feng
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao, 266109, PR China.
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao, 266109, PR China.
Biosens Bioelectron. 2021 Mar 15;176:112907. doi: 10.1016/j.bios.2020.112907. Epub 2020 Dec 17.
Biofuel cells (BFCs)-based self-powered biosensors suffer from the limited stability of bioenzymes. Meanwhile, the poor performance of self-powered biosensors affects the sensitivity of biosensing, thus, it is significant and challenging to improve their stability and sensitivity. In our work, a BFC-based self-powered biosensor, with simultaneously enhanced stability and sensitivity, was constructed utilizing dual metal-organic frameworks (MOFs) as the carriers of the bioenzyme and the electroactive probe, respectively. Anodic enzyme, glucose dehydrogenase (GDH), was encapsulated in zeolitic imidazolate framework-8 (ZIF-8) to form GDH@ZIF-8 composites, enhancing the catalytic activity and stability of GDH. Meanwhile, another zirconium metal-organic frameworks (UiO-66-NH) loaded with electroactive molecules (K[Fe(CN)]) served as nano-enrichment carriers and improved the capability of the cathode to accept electrons from the anode, further improving the sensitivity of the as-proposed biosensor. Herein, the "signal-on" BFC-based self-powered biosensing of exosomes, the model analyte, with excellent stability and outstanding sensitivity was realized with the assistance of dual MOFs, and the detection limit was down to 300 particles mL (based on 3s/k), which was superior to those previously reported in literatures. Furthermore, the developed protocol was capable of detecting exosomes derived from cancer cells in complex biological samples. Overall, in this work the enhancement of both stability and sensitivity has been achieved by utilizing two types of MOFs, which laid the foundation for expanding the applications of BFC-based self-powered biosensors.
基于生物燃料电池(BFC)的自供电生物传感器存在生物酶稳定性有限的问题。同时,自供电生物传感器的性能不佳会影响生物传感的灵敏度,因此,提高其稳定性和灵敏度具有重要意义且具有挑战性。在我们的工作中,利用双金属有机框架(MOF)分别作为生物酶和电活性探针的载体,构建了一种同时具有增强稳定性和灵敏度的基于BFC的自供电生物传感器。阳极酶葡萄糖脱氢酶(GDH)被封装在沸石咪唑酯骨架-8(ZIF-8)中形成GDH@ZIF-8复合材料,提高了GDH的催化活性和稳定性。同时,另一种负载有电活性分子(K[Fe(CN)])的锆基金属有机框架(UiO-66-NH)作为纳米富集载体,提高了阴极从阳极接受电子的能力,进一步提高了所提出的生物传感器的灵敏度。在此,借助双MOF实现了对外泌体(模型分析物)的基于BFC的“信号开启”自供电生物传感,具有出色的稳定性和卓越的灵敏度,检测限低至300个颗粒/mL(基于3s/k),优于文献中先前报道的检测限。此外,所开发的方案能够检测复杂生物样品中癌细胞来源的外泌体。总体而言,在这项工作中,通过使用两种类型的MOF实现了稳定性和灵敏度的增强,为扩展基于BFC的自供电生物传感器的应用奠定了基础。