Nanoscale assemblies designed for trace analyte detection typically require a complex fabrication process. Here, we prepare magnetic nanoparticle (FeO)-gold nanoparticle (AuNP)-gold nanostar (AuNS) bilayer magnetic-plasmonic satellite nanoassemblies (BMPSNs) for ultrasensitive detection of tobramycin (TOB). BMPSNs are constructed through seed-mediated growth and complementary DNA hybridization, combining magnetic separation and surface-enhanced Raman scattering (SERS) activities. AuNP is in situ growth on the surface of FeO to form the monolayer satellite assemblies. Partially complementary double-stranded DNA (DNA1/DNA2) is modified onto the surface of the first layer satellite AuNP. TOB aptamer (Apt) and fully complementary DNA (cDNA) form the duplex DNA. In the presence of TOB, cDNA of TOB Apt is replaced by TOB/TOB Apt, which can hybridize with DNA2 modified on the surface of FeO@AuNP-DNA1/DNA2 and further triggers exonuclease III cyclic amplification to obtain FeO@AuNP-DNA1. Finally, FeO@AuNP-DNA1 can assemble with AuNS@4-MBA-DNA3 through DNA hybridization to form BMPSNs. Thanks to excellent magnetic separation, exonuclease amplification and huge SERS enhancement of multiple hot spots, the limit of detection can achieve as low as 0.44 fg/mL of TOB, which is more sensitive than the previously reported methods. In addition, this method can be applied to TOB detection in actual samples with good recoveries and without interference by other antibiotics. The proposed method can be easily extended to sensitive detection of other targets by replacing the corresponding aptamers, paving a new avenue for food safety and environment monitoring.
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http://dx.doi.org/10.1016/j.bios.2022.114789 | DOI Listing |
Moiré configurations have recently attracted much attention due to their ability to enhance photonic responses and manipulate surface waves in the subwavelength ranges. However, previous studies have usually been focused on natural hyperbolic materials with limitations on patterning procedures, controlling rotation angles, and merely manipulating electric surface plasmons. Here, we theoretically and numerically investigate a novel magnetic moiré hyperbolic metasurface in the terahertz region, which enables two types of topological transition and a plethora of unusual magnetic moiré effects (magnetic surface wave manipulation, dispersion engineering, magic angles, spacer-dependent topological transition, and local field enhancement).
View Article and Find Full Text PDFBiosens Bioelectron
December 2022
The Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, 214122, China.
Nanoscale assemblies designed for trace analyte detection typically require a complex fabrication process. Here, we prepare magnetic nanoparticle (FeO)-gold nanoparticle (AuNP)-gold nanostar (AuNS) bilayer magnetic-plasmonic satellite nanoassemblies (BMPSNs) for ultrasensitive detection of tobramycin (TOB). BMPSNs are constructed through seed-mediated growth and complementary DNA hybridization, combining magnetic separation and surface-enhanced Raman scattering (SERS) activities.
View Article and Find Full Text PDFMaterials (Basel)
February 2020
Centre of Physics (CFUM), University of Minho, Campus de Gualtar, 4710-057 Braga, Portugal.
Multifunctional nanosystems combining magnetic and plasmonic properties are a promising approach for cancer therapy, allowing magnetic guidance and a local temperature increase. This capability can provide a triggered drug release and synergistic cytotoxic effect in cancer cells. In this work, nickel ferrite/gold nanoparticles were developed, including nickel ferrite magnetic nanoparticles decorated with plasmonic gold nanoparticles and core/shell nanostructures (with a nickel ferrite core and a gold shell).
View Article and Find Full Text PDFJ Am Chem Soc
May 2019
Laboratory of Molecular Imaging and Nanomedicine (LOMIN), National Institute of Biomedical Imaging and Bioengineering (NIBIB) , National Institutes of Health (NIH), Bethesda , Maryland 20892 , United States.
Pharmaceutics
December 2018
Centro de Física da Universidade do Minho (CFUM), Campus de Gualtar, 4710-057 Braga, Portugal.
Multifunctional liposomes containing manganese ferrite/gold core/shell nanoparticles were developed. These magnetic/plasmonic nanoparticles were covered by a lipid bilayer or entrapped in liposomes, which form solid or aqueous magnetoliposomes as nanocarriers for simultaneous chemotherapy and phototherapy. The core/shell nanoparticles were characterized by UV/Visible absorption, X-Ray Diffraction (XRD), Transmission Electron Microscopy (TEM), and Superconducting Quantum Interference Device (SQUID).
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