| Literature DB >> 30110965 |
Lotte M P Vermeulen1,2, Juan C Fraire3,4, Laurens Raes5,6, Ellen De Meester7, Sarah De Keulenaer8, Filip Van Nieuwerburgh9, Stefaan De Smedt10, Katrien Remaut11, Kevin Braeckmans12,13,14.
Abstract
Plasmonic nanoparticles for drug deliveryEntities:
Keywords: endosomal escape; gold nanoparticles; pDNA delivery; plasmonic effects
Mesh:
Substances:
Year: 2018 PMID: 30110965 PMCID: PMC6121899 DOI: 10.3390/ijms19082400
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1(A) under the influence of an external oscillating electromagnetic field, usually provided by laser light, the free electrons of gold nanoparticles (AuNPs) start to oscillate. When the amplitude of this oscillation is maximal, this phenomenon is referred to as Localized Surface Plasmon Resonance (LSPR); (B) irradiation of AuNPs with nanosecond laser pulses can lead to the formation of water vapour nanobubbles (VNBs) or heat transfer to the surrounding environment, depending on whether high or low intensity laser pulses are used.
Figure 2The application of plasmonic NPs to overcome intracellular barriers. (A) NP-sensitized plasma membrane photoporation. Cells are incubated with plasmonic NPs to allow attachment of the NPs to the plasma membrane. Next, laser irradiation causes the formation of VNBs (high energy pulsed laser) or heating (continuous wave or low energy pulsed laser). The generation of these plasmonic effects causes the formation of a pore in the plasma membrane, which allows entry of exogeneous compounds into the cell by diffusion; (B) light-triggered endosomal escape. Plasmonic NPs are allowed to be taken up by the cell through endocytosis. Next, laser irradiation causes the formation of VNBs (high energy pulsed laser) or heating (continuous wave or low energy pulsed laser). The generation of these plasmonic effects causes the formation of a pore in the endosomal membrane, which allows release of endocytosed cargo.
Figure 3Characterization 10 nm AuNPs. (A) TEM (transmission electron microscopy) image of unfunctionalized AuNPs. Scalebar represents 200 nm; (B) size distribution of AuNP derived from TEM images; (C) normalized extinction spectrum of pristine AuNPs. The blue line represents the experimental data, as measured by UV/VIS spectrophotometry. The grey line represents the simulation of 10 nm AuNP according to the Mie theory.
Figure 4Characterization of JetPEI/pDNA/AuNP complexes. (A) gel electrophoresis shows successful pDNA complexation for all JetPEI/pDNA/AuNP complexes. Lane 1 shows a 1 kb ladder control. Lane 2 shows free pDNA. Lane 3 shows JetPEI/pDNA complexes prepared at an N/P charge ratio of 4. Lane 4, 5, 6 and 7 show JetPEI/pDNA/AuNP prepared with 0.5, 1, 5 and 10 pellets of AuNP, respectively. Further characterization of the complexes by dynamic light scattering reveals (B) the size (grey bars), PdI (black dots) and (C) Z potential. Values are displayed as mean ± stdev; n = 2; (D) normalized UV/VIS spectra of HA coated AuNPs (blue line) and JetPEI/pDNA/AuNP complexes (orange–red lines).
Figure 5Determination of heating and VNB threshold via dark-field microscopy. (A) dark-field microscopy image of JetPEI/pDNA/AuNP 5 pt complexes in ddiH2O; (B) dark-field microscopy image upon VNB formation (VNBs indicated by yellow arrows); (C) dark-field microscopy image after VNB formation. Scalebar on the images represents 100 μm; (D) graph shows the relation between the number of VNBs and laser fluence. VNB threshold is calculated as the laser fluence needed to reach 90% of the maximum number of VNBs. The fluence for heating is selected at one-fourth of the VNB threshold; (E) the table shows the threshold values for VNB formation and heating (in J/cm2) used for JetPEI/pDNA/AuNP 5 pt complexes in further experiments.
Figure 6Evaluation of the uptake of JetPEI/pDNA/AuNP complexes in Hela cells. Confocal microscopy images show nuclei stained with Hoechst in the blue channel and AuNP core in the orange channel. The scale bar represents 10 μm.
Figure 7Evaluating transfection efficiency and cell viability in HeLa cells after laser irradiation in the heating or VNB regime. (A) the graph shows the percentage of cells that are positive for GFP transfection for different dilutions of JetPEI/pDNA/AuNP 5 pt complexes 24 h after laser irradiation; (B) the graph shows the corresponding percentage of viable cells as measured by DAPI staining. All graphs show mean ± SEM; n = 3. Significance was calculated using two-way ANOVA with a Bonferroni post-test (compare means to blank) (*** p < 0.001).
Figure 8Evaluation of endosomal escape and pDNA integrity. (A) confocal images show the result of the endosomal escape assay without laser treatment, after heating and after VNB formation of JetPEI/pDNA/AuNP 5 pt complexes into which fluorescently labeled oligonucleotides (ONs) were co-complexed. Upon successful endosomal escape, the fluorescent ONs accumulate into the nucleus. The scalebar represents 20 μm. The left column shows nuclei after Hoechst staining; the middle column shows AF647 ONs; and the right column shows the merge. (B) from confocal images, the percentage of cells is calculated that show endosomal escape (red nucleus) for the different dilutions of JetPEI/pDNA/AuNP 5 pt complexes. The data is obtained from the analysis of 60–100 cells per condition; (C) the pDNA concentration was measured via PicoGreen assay after the addition of dextran sulphate. The dotted line represents the amount of pDNA originally added to the complexes (pDNA reference). Graph shows mean ± SEM; n = 2; (D) graph shows the percentage of transfection efficiency after electroporation with isolated pDNA from JetPEI/pDNA/AuNP complexes. (*** p < 0.0001; * p < 0.05; ns = not significant).
Figure 9Alternative NP design for cytosolic delivery of intact pDNA after endocytosis.
Figure 10Optical design for generation and detection of heating and VNB formation. AOTF: acousto-optic modulator to control the power of the continuous wave laser. OPO laser: pulsed laser with ~7 ns pulses equipped with an Optic Parametric Oscillator that allows for tuning the wavelength from 410 to 2200 nm. 90/10 BS: laser beam splitter that reflects 10% and transmits 90% of the laser light. PBS: polarization beam splitter. Image adjusted with permission from [20] © American Chemical Society.