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Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Dual-Mode Microcantilever Sensor with Surface-Attached Nanofiber Membrane for Rapid and Highly Sensitive Detection of
Yongbin Qin1,2, Wei Gu3, Zichen Zheng1,4
1School of Mechanical Engineering, Yangzhou University, 196 Huayang West Road, Yangzhou225127, PR China.
Abstract:
In light of the escalating demand for highly sensitive and reliable detection methods for ractopamine (RAC) residues in food safety, this study introduces an innovative dual-mode immunosensor. This sensor is constructed from a PZT microcantilever integrated with CTFx@FTP composite nanoparticles and a PANI@rGO-COOH nanofiber membrane. It is capable of simultaneously generating electrical signals and cantilever vibration-amplitude signals, thus facilitating quantitative detection of RAC. B-site Fe incorporation was employed to regulate mixed-valence states and oxygen-vacancy-related defects in CaTi1-xFexO3-σ, while FeTCPP-mediated π-d electronic coupling and the π-conjugated PANI@rGO-COOH network were integrated to construct a composite sensing interface that facilitates charge transfer and electromechanical transduction, enabling specific immunorecognition events to be converted into measurable dual-mode signals. At an Fe doping level of x = 0.20, the sensor demonstrates optimal interfacial transport characteristics, achieving a remarkably low limit of detection of 0.17 ng mL-1, alongside a wide detection range of 0.17 to 50 ng mL-1, and good linearity. The dual-mode signals exhibit good selectivity, storage stability, reproducibility, and repeatability. In spiked pig and bovine serum samples, recovery rates of 97-104% and consistency with ELISA results confirmed the applicability of the proposed sensor in complex biological matrices. The defect-engineering and interface-coupling-based electromechanical synergistic amplification strategy proposed in this study offers a promising pathway for the development of dual-mode electrical and mechanical immunosensors for small molecules. This approach holds significant potential in food safety monitoring.
