| Literature DB >> 30583524 |
Luigi Lerra1, Annafranca Farfalla2, Beatriz Sanz3, Giuseppe Cirillo4, Orazio Vittorio5,6,7, Florida Voli8, Marion Le Grand9,10,11, Manuela Curcio12, Fiore Pasquale Nicoletta13, Anna Dubrovska14,15,16,17, Silke Hampel18, Francesca Iemma19, Gerardo F Goya20.
Abstract
With the aim to obtain a site-specific doxorubicin (DOX) delivery in neuroblastoma SH-SY5Y cells, we designed an hybrid nanocarrier combining graphene oxide (GO) and magnetic iron oxide nanoparticles (MNPs), acting as core elements, and a curcumin⁻human serum albumin conjugate as functional coating. The nanohybrid, synthesized by redox reaction between the MNPs@GO system and albumin bioconjugate, consisted of MNPs@GO nanosheets homogeneously coated by the bioconjugate as verified by SEM investigations. Drug release experiments showed a pH-responsive behavior with higher release amounts in acidic (45% at pH 5.0) vs. neutral (28% at pH 7.4) environments. Cell internalization studies proved the presence of nanohybrid inside SH-SY5Y cytoplasm. The improved efficacy obtained in viability assays is given by the synergy of functional coating and MNPs constituting the nanohybrids: while curcumin moieties were able to keep low DOX cytotoxicity levels (at concentrations of 0.44⁻0.88 µM), the presence of MNPs allowed remote actuation on the nanohybrid by a magnetic field, increasing the dose delivered at the target site.Entities:
Keywords: graphene oxide; iron oxide nanoparticles; magnetic targeting; nanohybrids; synergism
Year: 2018 PMID: 30583524 PMCID: PMC6359315 DOI: 10.3390/pharmaceutics11010003
Source DB: PubMed Journal: Pharmaceutics ISSN: 1999-4923 Impact factor: 6.321
Figure 1Schematic representation of the synthesis of nanohybrid C@HSA-MNPs@rGO.
Figure 2FTIR spectra of GO and MNPs@GO.
Figure 3SEM pictures of nanohybrid C@HSA-MNPs@rGO.
Figure 4Main panel: Magnetization M data vs. applied field H of nanohybrid C@HSA-MNPs@rGO at room temperature. Upper left panel: Zero-field-cooled and field-cooled M(T) curves at applied field H = 15.92 kA/m. Low-right panel: Magnification of the low-field region of the M(H) hysteresis loop, showing the measurable coercive field at T = 295 K as a reflect of the blocked state of the magnetic nanoparticles within the nanohybrid.
Figure 5TGA (a) and DTG (b) curves of C@HSA-rGO, HSA-GO, and C@HSA-MNPs@rGO.
Figure 6pH-responsive DOX release profile (Mt/M0) from C@HSA-MNPs (solid line) and C@HSA-MNPs@rGO (dashed lines) at pH 5.0 (●) and 7.4 (■).
R2 values and kinetic parameters.
| Mathematical Model | Parameter | C@HSA-MNPs | C@HSA-MNPs@rGO | ||
|---|---|---|---|---|---|
| pH | |||||
| 2.0 | 7.0 | 2.0 | 7.0 | ||
|
|
| 0.9935 | 0.9747 | 0.9563 | 0.9731 |
|
| 0.97 | 0.53 | 0.45 | 0.28 | |
|
| 32.33 | 1.13 | 0.82 | 0.39 | |
|
| 1.13 | 0.79 | 0.60 | 0.50 | |
|
| 60 | 47 | 52 | 39 | |
|
|
| 0.9717 | 0.9765 | 0.9527 | 0.9639 |
|
| 0.98 | 0.53 | 0.45 | 0.28 | |
|
| 49.00 | 1.13 | 0.82 | 0.39 | |
|
| 1.87 | 0.81 | 0.58 | 0.44 | |
|
| 52 | 46 | 52 | 39 | |
|
|
| 0.9946 | 0.9933 | 0.9888 | 0.9248 |
|
| 2.90 | 8.46 | 7.28 | 6.14 | |
|
| 0.78 | 0.37 | 0.35 | 0.29 | |
|
| 58 | 294 | # | # | |
# outside experimental range.
Figure 7SH-SY5Y viability after treatment with free and loaded DOX on HSA-MNPs@GO and C@HSA-MNPs@rGO.
Figure 8TEM images of SH-SY5Y after incubation with C@HSA-MNPs@rGO, proving the presence of nanohybrid within the cytoplasm.
Figure 9Optical microscope image SH-SY5Y incubated with DOX-C@HSA-MNPs@rGO (a) and DOX-C@HSA-rGO (b) under the effect of a permanent magnet.