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Beilstein J. Nanotechnol. 2014, 5, 1944–1965, doi:10.3762/bjnano.5.205
Figure 1: SEM images of silver nanocubes (A) and a mixture of silver nanoparticles with different shapes and ...
Figure 2: Representative scanning electron microscopy image of PVP-coated silver nanoparticles (A) and partic...
Figure 3: Dissolution of silver nanoparticles immersed in pure water, argon-saturated water under argon atmos...
Figure 4: (A) CD spectra of pure dissolved bovine serum albumin (thick black line) and in the presence of dif...
Figure 5: A: STXM images at 510 eV of human mesenchymal stem cells (hMSC) after 24 h of incubation with spher...
Figure 6: Agglomeration of internalized silver nanoparticles in hMSC analyzed by phase contrast microscopy (B...
Figure 7: Intracellular occurrence of agglomerated silver nanoparticles in PBMC analyzed through microscopy. ...
Figure 8: Proof of intracellular localization of silver nanoparticle agglomerates in monocytes and lymphocyte...
Figure 9: Localization of silver nanoparticles agglomerates in hMSC. A representative light micrograph after ...
Figure 10: Decrease in the amount of silver agglomerates within hMSC after prolonged cell culture. hMSC were p...
Figure 11: Uptake and metabolism of silver nanoparticles in brain astrocytes. Data from cultured astrocytes su...
Figure 12: Damaged cells given in percent by scoring for CA in CHO9 (n = 816, p > 0.999), K1 (n = 1851, p > 0....
Figure 13: The diagram shows the distribution of sister-chromatid exchanges (SCE) in untreated cells (black ba...
Figure 14: These diagrams summarize the quantification of foci formation in CHO9, K1 and V79B. Data derived fr...
Figure 15: The diagram shows the distribution of twin SCE (black bars) and single SCE (grey bars) in CHO K1 ce...
Figure 16: Schematic image of the triple-cell co-culture model consisting of MDMs (blue), A549 cells (red), a ...
Figure 17: Cytotoxic effects and free radical production by silver nanoparticles per se versus the effects due...
Beilstein J. Nanotechnol. 2014, 5, 1699–1711, doi:10.3762/bjnano.5.180
Figure 1: Bovine serum albumin (BSA) depletion in the supernatant after BSA separation from the 50 nm Polysty...
Figure 2: The size-selective separation of mouse serum proteins in the corona of the three differently sized ...
Figure 3: After 24 h incubation the fraction of totally available proteins binding to the AuNP is shown versu...
Figure 4: Spherical monodisperse AuNP of 5 nm core diameter with five different ligands. The zeta potential i...
Figure 5: Protein percentages in cumulative stacks of the most abundant proteins bound to either of all five ...
Figure 6: Schematics of the analysis of quantitative NP biokinetics. After particle administration at time t ...
Figure 7: Release of LDH in the supernatant after incubation of PCLS in tissue culture medium for 4 h. The an...
Figure 8: Release of TNF-α in the supernatant after 4 h of incubation of PCLS (of untreated animals or animal...
Figure 9: Release of IL-8 in the supernatant after 4 h of incubation of PCLS (from untreated animals or anima...
Beilstein J. Nanotechnol. 2013, 4, 933–940, doi:10.3762/bjnano.4.105
Figure 1: Representative transmission (A) and scanning electron (B) images of PVP-coated AgNP.
Figure 2: Particle number distribution of PVP-AgNP by dynamic light scattering (Nano Zetasizer ZS, Malvern, H...
Figure 3: Particle intensity distribution of PVP-AgNP by dynamic light scattering (Nano Zetasizer ZS, Malvern...
Figure 4: LDH levels in BALF 24 hours after intratracheal instillation of PVP-AgNP. Values are mean ± SEM; n ...
Figure 5: Total protein levels in BALF 24 hours after the intratracheal instillation of PVP-AgNP. Values are ...
Figure 6: Cytokine levels in BALF 24 hours after the intratracheal instillation of PVP-AgNP (A: proinflammato...
Figure 7: Cell counts in BALF 24 hours after the instillation of PVP-AgNP. AM: Alveolar macrophages. Values a...
Figure 8: Representative BAL cell image after the intratracheal instillation of 250 µg PVP-AgNP. Gray arrows ...