| Literature DB >> 31362399 |
Xiaochen Liu1,2,3, Lihao Wang1,2,3, Junyuan Zhao1,2,3, Yinfang Zhu4,5,6, Jinling Yang7,8,9, Fuhua Yang1,2.
Abstract
A novel microcantilever sensor was batch fabricated for Yersinia detection. The microcantilever surface modification method was optimized by introducing a secondary antibody to increase the number of binding sites. A novel microfluidic platform was designed and fabricated successfully. A 30 μL solution could fully react with the microcantilever surface. Those routines enhanced the binding efficiency between the target and receptor on the microcantilever. With this novel designed microfluidic platform, the specific adsorption of 107 Yersinia on the beam surface with modified F1 antibody was significantly enhanced.Entities:
Keywords: Yersinia; binding efficiency; microcantilever; microfluidic system
Mesh:
Substances:
Year: 2019 PMID: 31362399 PMCID: PMC6696187 DOI: 10.3390/s19153326
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1(a) Schematic of microcantilever biosensor and (b) scanning electron microscope (SEM) picture of the cantilever.
Figure 2Resonance spectrum of cantilever measured in air.
Figure 3Schematic of microfluidic platform reaction chamber.
Figure 4COMSOL simulation results of microchannel height (flow rate f = 1 mL/min).
Figure 5The microfluidic system.
Figure 6Fluorescence microscope observation results (a) with and (b) without modifying the secondary antibody to the surface of the cantilever prior to incubating the F1 antibody.
Figure 7Microcantilever surface modification (a) without and (b) with a secondary antibody.
Figure 8Microscope pictures of static reaction results: (a) reference beam; working beam at (b) 50×, (c) 500×, and (d) 1000× magnification.
Figure 9Detection results of Yesinia with microfluidic platform at a flow rate of 1 mL/min: (a) reference beam and (b) working beam.