Jiayin Li, Jiayin Li, Qingwen Chen, Haibing Zhu, Yuru Wang, Yadong Xue, Feng Shi, Zhanjun Yang, Juan Li, Juan Li
Metallothioneins (MTs) have become important biomarkers for the early clinical diagnosis of malignancies. However, the development of a cost-effective and convenient method for the rapid monitoring of MTs still remains a substantial challenge. Herein, we propose a metal–organic framework (MOF)-derived multivariate flower-like Cu–Co 3 O 4 /CoOOH nanozyme for the sensitive colorimetric biosensing of MTs. The Cu–Co 3 O 4 /CoOOH nanozyme was obtained by a novel silica (SiO 2 ) shell-mediated hierarchical MOF-derived strategy. With the aid of SiO 2 shell, bimetal-based zeolitic imidazolate framework (CuCo-ZIF) was partially pyrolyzed into Cu and Co 3 O 4 nanoparticles (NPs), while the remaining Co-ZIF was further transformed into CoOOH nanoflakes through an alkaline etching step. Benefiting from its unique structure, diverse composition, uniform and rich active sites, the synthesized Cu–Co 3 O 4 /CoOOH nanozyme exhibits greatly enhanced peroxidase (POD)-like activity. In the presence of H 2 O 2, the Cu–Co 3 O 4 /CoOOH nanozyme catalyzes the decomposition of H 2 O 2 to generate •OH, which oxidizes 3,3′,5,5′-tetramethylbenzidine (TMB) to blue ox-TMB. Metallothioneins (MTs), as a type of cysteine-rich protein, can eliminate •OH from the reaction system, and thus a nanozyme-based colorimetric biosensor was constructed for monitoring MTs with a wide linear range (0.035–1.5 × 10 3 μM), a low detection limit (2.2 × 10 –3 μM), excellent specificity, stability, and practicability for serum samples. This work provides a universal and promising hierarchical derivatization of the MOF strategy to design structurally and compositionally diverse nanozymes for biosensing applications.