Utilizing the extrinsic electronic properties of materials can trigger ECL signal response more efficiently than structural and energy level modulation. Microcystin-LR (MC-LR) is one of the most prevalent toxins in freshwater. Herein, a highly sensitive sensor was fabricated for MC-LR detection by integrating electronic regulation and controlled release strategies. For the controlled release strategy, mesoporous silica nanoparticles (MSNs) were employed as carriers to load glutathione (GSH), with their surfaces capped by DNA strands and covalently conjugated to target antigens. Upon specific binding between the antigen and its corresponding antibody, the double-stranded DNA structure was cut by the restriction enzyme DPN1 on the antibody, triggering the controlled release of GSH. The sensor substrate was composed of a MnO2 QDs-CBMAA (M-CB) hydrogel, which possessed dual functions: antifouling capability to mitigate non-specific adsorption of irrelevant proteins and quenching the EuCu NC signal by resonance energy transfer (RET). For the electronic manipulation strategy, the released GSH reacted with MnO2 QDs in the M-CB hydrogel, reducing them to Mn2+ without a quenching effect and thereby achieving efficient signal recovery. Consequently, the sensor achieved a low limit of detection (8.56 fg/mL) and a broad detection range from 10 fg/mL to 100 ng/mL. This novel electronic manipulation strategy endowed the sensor with rapid and highly efficient signal response performance, providing a feasible method for the sensitive trace detection of pollutants.
Haorui Li, Xianzhen Song, Lu Zhao et al.· ACS Sensors· 0 citations
In sensing analysis, controlling signal switch through targets is a key method to ensure detection sensitivity. To improve the control effect, an antifouling sensor based on controlled-release and co-reaction catalytic strategies was designed. Concretely, the gel interface with the biocompatible red cell membrane as the skeleton was developed to resist the non-specific adsorption of interfering proteins in the serum environment. Secondly, due to the strong specific binding of antigens and antibodies, S QDs were released from the cavity of mesoporous SiO2, thereby achieving target-induced signal self-on. At the same time, Pd NCs encapsulated in the antifouling hydrogel were used for autocatalysis of luminescence signals to achieve highly responsive signal-on. The integration of interface antifouling and controlled release effectively avoided the adverse interferences from external environment and background signals, improving the reliability of target-induced responses, and the highly responsive signal-on mode endowed the biosensor with high sensitivity. Based on this, the constructed biosensor realized trace detection of squamous cell carcinoma antigen in a wide detection range of 100 fg/mL ∼1 μg/mL, with a detection limit of 27.7 fg/mL, meeting the needs of early clinical diagnosis of related cancers. The proposed biosensing platform based on cell membrane antifouling and highly responsive signal-on provides a powerful tool for the applications in clinical diagnose and other biological detection scenarios.
Zhengjun Dong, Liangyue Chen, Lu Zhao et al.· Biosensors & bioelectronics· 0 citations
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