Liu Kai, Wang Yuru, Zhu Haibing, Shi Feng, Lai Zijun, Long Yan, Ren Chuanli, Li Juan, Yang Zhanjun
College of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, 225002, PR China.
Department of Laboratory Medicine, Northern Jiangsu People's Hospital Affiliated Yangzhou University, Yangzhou, 225001, PR China.
Talanta. 2025 Jun 1;288:127698. doi: 10.1016/j.talanta.2025.127698. Epub 2025 Feb 13.
The metal-organic frameworks (MOFs)-derived nanozymes in air atmosphere have gained great attention in biosensing fields. Nevertheless, this derivative pattern may result in the destabilization of the MOF framework and the aggregation of active sites, consequently diminishing its catalytic activity. Herein, we reported an inert-remodeling strategy to build bimetal-confined nitrogen-doped carbon nanozyme for dual-mode cascade enzyme biosensing. The strategy was easily achieved by pyrolysis of MOFs (CoNi-ZIF-67 as model) precursor in argon atmosphere, leading to the formation of CoNi bimetallic nanoparticles uniformly confined nitrogen-doped carbon (CoNi-CN) nanozyme. This derivative nanozyme exhibits significantly enhanced peroxidase (POD)-like activity, which is 4 times higher than that of NiCoO nanozyme (CoNi-ZIF-67 derivative in air atmosphere) and 54 times higher than that of CoNi-ZIF-67 precursor. The excellent POD-like activity of CoNi-CN nanozyme is ascribed to the following facts: i) integrate structure with uniformly dispersed CoNi bimetal active sites; ii) confinement effect of CoNi bimetal encapsulated in CN architecture. Integrating with glucose oxidase (GOx) to prepare cascade enzyme of CoNi-CN@GOx, colorimetric-chemiluminescent imaging sensor based on CoNi-CN@GOx cascade system was developed for glucose detection. Glucose was assayed in wide linear ranges of 0.08-15 mM (colorimetric) and 0.1-30 mM (CL imaging). This research provides a promising inert-remodeling strategy to construct high-performance nanozyme for dual mode biosensing applications.
空气中的金属有机框架材料(MOFs)衍生的纳米酶在生物传感领域备受关注。然而,这种衍生模式可能会导致MOF框架的不稳定和活性位点的聚集,从而降低其催化活性。在此,我们报道了一种惰性重塑策略,用于构建用于双模式级联酶生物传感的双金属受限氮掺杂碳纳米酶。该策略通过在氩气气氛中热解MOFs(以CoNi-ZIF-67为模型)前驱体轻松实现,导致形成均匀受限在氮掺杂碳(CoNi-CN)纳米酶中的CoNi双金属纳米颗粒。这种衍生的纳米酶表现出显著增强的过氧化物酶(POD)样活性,比NiCoO纳米酶(空气中CoNi-ZIF-67的衍生物)高4倍,比CoNi-ZIF-67前驱体高54倍。CoNi-CN纳米酶优异的POD样活性归因于以下事实:i)具有均匀分散的CoNi双金属活性位点的整合结构;ii)封装在CN结构中的CoNi双金属的限域效应。将其与葡萄糖氧化酶(GOx)整合以制备CoNi-CN@GOx级联酶,开发了基于CoNi-CN@GOx级联系统的比色-化学发光成像传感器用于葡萄糖检测。葡萄糖在0.08 - 15 mM(比色法)和0.1 - 30 mM(CL成像)的宽线性范围内进行测定。该研究为构建用于双模式生物传感应用的高性能纳米酶提供了一种有前景的惰性重塑策略。