| Literature DB >> 31058857 |
Evi Christodoulou1, Maria Nerantzaki2, Stavroula Nanaki3, Panagiotis Barmpalexis4, Kleoniki Giannousi5, Catherine Dendrinou-Samara6, Makis Angelakeris7, Eleni Gounari8, Antonis D Anastasiou9, Dimitrios N Bikiaris10.
Abstract
Magnetic hybrid inorganic/organic nanocarriers are promising alternatives for targeted cancer treatment. The present study evaluates the preparation ofEntities:
Keywords: Paclitaxel; block copolymers; chemotherapy; drug delivery; hyperthermia; magnetic core–shell nanoparticles; nanocarriers; poly(lactic acid); polyesters
Year: 2019 PMID: 31058857 PMCID: PMC6571958 DOI: 10.3390/pharmaceutics11050213
Source DB: PubMed Journal: Pharmaceutics ISSN: 1999-4923 Impact factor: 6.321
Figure 1Synthesis route of TEHA-co-PDLLA semitelechelic block copolymer.
Figure 21H NMR spectra of (A) neat TEHA and TEHA-co-PDLLA semitelechelic block copolymers and (B) TEHA and TEHA-co-PDLLA 1/5 copolymer with higher magnification.
Figure 3Neat TEHA, neat PDLLA, and TEHA-co-PDLLA semitelechelic block copolymers characterized via FTIR (A), XRD (B), and DSC second heat scan (C) analysis.
Figure 4FTIR spectra (A), TG and DTG curves (B), XRD pattern (C), and VSM measurements (D) of MnFe2O4 MNPs.
Figure A1SEM micrographs of (A) prepared neat nanoparticles having PVA 0.5 w/v (i) or sodium cholate hydrate 12 mM (ii) in the aqueous phase and (B) prepared neat nanoparticles having PVA 0.5 w/v in the aqueous phase at varying TEHA to PDLLA ratios.
Molar masses of neat PDLLA and TEHA-co-PDLLA semitelechelic block copolymers.
| Sample | Molar Ratio | Mn (g/mol) | Mw (g/mol) | PDI |
|---|---|---|---|---|
| PDLLA | - | 147,600 | 470,500 | 3.2 |
| TEHA-co- PDLLA 1/5 | 1:5 | 12,200 | 29,700 | 2.4 |
| TEHA-co- PDLLA 1/50 | 1:50 | 29,000 | 107,000 | 3.7 |
| TEHA-co- PDLLA 1/70 | 1:70 | 45,800 | 170,900 | 3.7 |
| TEHA-co- PDLLA 1/140 | 1:140 | 86,200 | 231,000 | 2.7 |
Figure 5TEM micrographs of TEHA-co-PDLLA 1/140 copolymers in (A) low and (B) higher magnification.
Figure 6XRD difractograms (A) and FTIR spectra (B) of Paclitaxel and TEHA-co-PDLLA nanoparticles.
Figure A2SEM micrograms of Paclitaxel loaded TEHA-co-PDLLA nanoparticles for 1/70 (A) and 1/140; (B) TEHA to PDLLA.
Figure 7FTIR spectra (A), XRD diffractograms (B), and DSC thermograms (C) of magnetic core–shell drug-loaded polymeric nanoparticles.
Figure A3SEM and EDS analysis of the prepared magnetic core–shell drug-loaded polymeric nanoparticles.
Figure 8BF-STEM images of the drug-loaded polymeric MnFe2O4 nanoparticles.
Particle size distribution, yield, and % EE of magnetic core–shell drug-loaded polymeric nanoparticles.
| Polymer Used | Particle Size (nm) | ζ-Potential (mV) | Yield (%) | Entrapment Efficiency (%) |
|---|---|---|---|---|
| TEHA-co-PDLLA 1/100 | 111 ± 10 | -32 | 58.6 ± 2.8 | 6.23 |
| TEHA-co-PDLLA 1/140 | 124 ± 13 | -34 | 75.6 ± 4.2 | 5.61 |
| PDLLA | 140 ± 12 | -28 | 73 ± 1.7 | 5.28 |
Figure 9Hyperthermia curves for the prepared magnetic core–shell nanoparticles.
Figure 10PXT dissolution profiles for the prepared magnetic core–shell polymeric nanoparticles.
Figure 11The viability of Caco-2 cells (A) and hASCs (B) incubated with MNPs. Cells viability was determined by MTT assay cells’ treatment with MNPs (200 and 1000 μg/mL) for 24 h. The absorbance values are directly proportional to metabolic activity of the cells.
Figure 12Microscope images of the cellular activity of Caco2 cells, treated with MNPs (200 and 1000 μg/mL) for 24 h.