| Literature DB >> 32457878 |
Carina I C Crucho1, João Avó1, Ana M Diniz1, Sandra N Pinto1, José Barbosa1, Poppy O Smith2, Mário Nuno Berberan-Santos1, Lars-Olof Pålsson2, Fernando B Dias3.
Abstract
Thermally activated delayed fluorescence (<Entities:
Keywords: TADF; dye-loaded nanoparticles; fluorescence imaging; fluorescence microscopy; luminescent probes; optical imaging
Year: 2020 PMID: 32457878 PMCID: PMC7227253 DOI: 10.3389/fchem.2020.00404
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Scheme 1Chemical structures of TADF emitters used for the preparation of luminescent nanoparticles.
Figure 1TEM images of the unloaded nanomaterials PSP (A) and PSNH2 (B). Scale bar = 100 nm.
Morphological properties of prepared and dye-loaded PS nanoparticles.
| Diameter | 31.7 | 103.0 | 35.6 | 106.4 | 37.1 | 107.2 |
| PDI | 0.02 | <0.01 | 0.02 | 0.01 | 0.02 | 0.01 |
| Dye concentration (w/w %) | no dye | no dye | 0.97 | 0.31 | 0.59 | 0.34 |
determined by TEM.
Prompt fluorescence and total quantum yield (ΦPF, ΦPL), prompt and delayed emission lifetime (τPF, τDF) and wavelength (λem) of dyes 1 and 2, and luminescent nanomaterials PS1-4, measured in aqueous media.
| Dye | 563 | 0.02 | 6.59 | 0.02 | n.d. | n.d. |
| 550 | 0.05 | 4.58 | 0.18 | 2.6 | 5.11 | |
| 556 | 0.03 | 4.60 | 0.11 | 2.7 | 2.89 | |
| Dye | 629 | <0.01 | 6.3 | <0.01 | n.d. | n.d. |
| 539 | 0.18 | 16.5 | 0.24 | 0.3 | 11.78 | |
| 555 | 0.07 | 7.5 | 0.09 | 0.3 | 9.56 |
ameasured in aerated conditions;
bmeasured in degassed conditions;
not detected.
Figure 2Normalized steady-state emission spectra of free dyes (black) and dye-loaded neutral (blue) and charged (red) nanoparticles in aqueous suspension: (A) dye 1, PS1, and PS2, λex = 340 nm; (B) dye 2, PS3, and PS4, λex = 420 nm.
Figure 3Steady-state emission spectra of PS1 (A) and PS2 (B) in aqueous suspension collected before (red) and after (black) degassing. λex = 340 nm.
Figure 4Normalized time-resolved emission spectra of PS1 (A) and PS2 (B) in degassed aqueous suspension, collected at different delay times. λex = 355 nm.
Figure 5Steady-state emission spectra of PS3 (A) and PS4 (B) in aqueous suspension collected before (red) and after (black) degassing. λex = 420 nm.
Figure 6Normalized time-resolved emission spectra of PS3 (A) and PS4 (B) in degassed aqueous suspension, collected at different delay times. λex = 355 nm.
Figure 7Luminescence decays of PS1 (A) and PS2 (B) collected in degassed aqueous suspension at room-temperature. λex = 355 nm.
Figure 8Luminescence decays of PS3 (A) and PS4 (B) collected in degassed aqueous suspension at room-temperature. λex = 355 nm.
Figure 9Effect of PS3 and PS4 on MCF-7 cell viability as a function of concentration in incubation medium for 24 h. The percentages refer to cell viability represented as a percentage of control.
Figure 10Confocal microscopy images of MCF-7 cells incubated for 24 h in the presence of PS3 at different concentrations in incubation medium: (a) 100 μg/mL; (b) 50 μg/mL; (c) 25 μg/mL. Images show PS3 emission in green and plasma membrane labeled with WGA-Alexa Fluor 633 in red.
Figure 11Confocal microscopy images of MCF-7 cells incubated for 24 h in the presence of PS4 at different concentrations in incubation medium: (a) 100 μg/mL; (b) 50 μg/mL; (c) 25 μg/mL. Images show PS4 emission in green and plasma membrane labeled with WGA-Alexa Fluor 633 in red.
Figure 12Integrated intracellular nanoparticle fluorescence, measured as a function of concentration of PS3 (red) and PS4 (blue) in the incubation medium. Analyzed area = 240 × 240 μm.