The purpose of this study was to develop a multifunctional theranostic probe for imaging (magnetic resonance imaging [MRI] and single-photon emission computed tomography [SPECT]) and therapy (photodynamic therapy). For this purpose, Tc-99m-labeled lupulone-conjugated FeO@TiO nanocomposites (Tc-DTPA-FeO@TiO-HLP and Tc-DTPA-FeO@TiO-ALP nanocomposites) were synthesized. The average diameter of the nanocomposites was 171 ± 20 nm as seen on transmission electron microscopy images. FeO@TiO nanocomposites exhibited fluorescence spectra at an emission wavelength of 314 nm. Lupulone-conjugated FeO@TiO nanocomposites were spherical-shaped with a suitable dispersion and without visible aggregation, and their radiolabeling yields were over 85%. Healthy (RWPE-1 normal human prostate epithelial cell line) and cancer prostate cell lines (PC-3 human prostate cancer cell line) were used to determine the in vitro biological behavior of the nanocomposites. The PC-3 cells treated with lupulone-conjugated FeO@TiO nanocomposites showed a lower cell viability compared with RWPE-1 cells treated with lupulone-conjugated FeO@TiO nanocomposites. Lupulone-modified FeO@TiO nanocomposites may serve in the future as a multifunctional probe for positron emission tomography (PET)/MRI, photodynamic therapy, and hyperthermia therapy of cancer.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9797211 | PMC |
http://dx.doi.org/10.1002/aoc.6435 | DOI Listing |
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