| Literature DB >> 28240255 |
Ruizhi Feng1, Weining Shi1, Dejia Wang1, Jia Wen1, Hongjuan Li1, Shiguo Sun1, Yongqian Xu1.
Abstract
Optical activity of hierarchical supramolecular assemblies based on organic dyes would create multiple functional architectures. In this work, three kinds of silica naical">noparticles with or without fuical">nctional groups were syical">nthesized. For the first time, silica nanoparticles can induce positively charged squaraine (SQ) to aggregate to form supramolecular assemblies. Adenosine-5'-triphosphate (ATP) as building blocks was absorbed on the surface of silica nanoparticles through metal-anion coordination and electrostatic interactions, in which the aggregates of SQ was transferred to monomer. The thickness being composed of ATP and SQ on the outside of nanoparticles is about 5 nm. These supramolecular assemblies showed selective turn-on fluorescence response to ATP in near infrared (NIR) region over other ions through metal-anion coordination and electrostatic interactions. These functional silica nanoparticles possessing many advantages provide proof-of-principle "seed crystals" for construction of supramolecular assemblies and platforms for sensing with facile performance.Entities:
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Year: 2017 PMID: 28240255 PMCID: PMC5327475 DOI: 10.1038/srep43491
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Two known approaches (a,b) and our new strategy (c) of possible assembled assay between functionalized silica nanoparticle (SiNPs-DPA@Zn or SiNPs-N+), SQ and ATP.
Figure 2UV-Vis absorption spectra (A) and fluorescence spectra (B) changes of SQ (5 μM) in phosphate buffer (PBS, 10 mM, pH 7.2) upon addition of SiNPs-DPA@Zn.
Figure 3Fluorescence spectra change (A) and relative fluorescence intensity change (I648/I0) (B) of SQ (5 μM) in the presence of SiNPs-DPA@Zn (220 mg/L) in PBS (10 mM, pH 7.2) upon addition of ATP.
Figure 4SEM images of SQ (A) in the presence of SiNPs-DPA@Zn before (B) and after (C) addition of ATP.
Figure 5(A) The relative fluorescence intensity change of SQ (5.0 μM) at 648 nm in the presence of SiNPs-DPA@Zn (220 mg/L) in PBS (10 mM, pH 7.2) upon addition 333 μM of various ions or other nucleoside polyphosphates (black bars). Red bars represent the relative intensity change with subsequent addition of ATP (333 μM). (B) Photographs of color change of SQ (5 mM) in PBS in the presence of SiNPs-DPA@Zn (220 mg/L) upon addition of different ions (333 μM).
Figure 6Confocal fluorescence images of MCF-7 cells.
(A–C) images of MCF-7 cells pretreated with SQ (5 μM) for 10 min and subsequent treatment with SiNPs-DPA@Zn (220 μg/ml) for 30 min; (D–F) images of MCF-7 cells pretreated with SQ (5 μM) for 10 min and subsequent treatment of SiNPs-DPA@Zn (220 μg/ml) for 30 min, followed by treatment with ATP (50 μM) for 30 min; (A and D) images were taken in fluorescence field; (B and E) bright-field images of MCF-7 cells in samples; and (C and F) is the overlap of bright-field and fluorescence. Images were acquired by using excitation windows of λex = 559 nm. Scare bar: 50 μm.