Xiaodong Lü, Xinyi Liu, Qiaodie Wang, Xiaoze Dong, Mingwei Qin, Gengli Huang, Xiang Han, Yi-Yao Wu, Zhouping Wang
Designing an electrochemical aptasensor for detecting Aflatoxin B1 (AFB 1 ) in food samples is a great challenge. Herein, a catalytic hairpin assembly combined with a bipedal Mg 2+ -dependent deoxyribonuclease (Mg 2+ -DNAzyme) serves as a signal enhancer. Polyethylenimine-Ce-based metal–organic framework@nitrogen-doped multiwalled carbon nanotubes/gold nanoparticles nanocomposites (P-CeMOFs@MWCNTs/AuNPs) were used as electrode modification materials, and MOF-derived Co 3 O 4 and AuNP-labeled oligonucleotides (Au@Co 3 O 4 @S) served as signal probes. An ultrasensitive electrochemical aptasensor for the detection of AFB 1 was developed. During the reaction, AFB 1 displaced the aptamer from the complementary chain (T), enabling formation of the HP1-HP2 complex by opening HP1 and binding to HP2. HP3, containing ribonucleotide (rA), was repeatedly cleaved in the presence of Mg 2+, thereby vacating the complementary chain to capture the Au@Co 3 O 4 @S signal probe, ultimately leading to signal amplification. With such a design, the detection range of the sensor was verified to be 1 × 10 –4 –1 × 10 2 ng/mL, and the limit of detection was 6.3 × 10 –5 ng/mL. Under optimal conditions, the aptasensor had excellent specificity, reproducibility, and stability, while the recovery in food samples made it eligible for a wide range of applications.