| Literature DB >> 31979001 |
Emanuela Fabiola Craparo1, Salvatore Emanuele Drago1, Nicolò Mauro1,2, Gaetano Giammona1, Gennara Cavallaro1.
Abstract
Here, a novel protonableEntities:
Keywords: STAT6; asthma; pegylation; polyamine; polyaspartamide; polyplexes; siRNA
Year: 2020 PMID: 31979001 PMCID: PMC7076449 DOI: 10.3390/pharmaceutics12020089
Source DB: PubMed Journal: Pharmaceutics ISSN: 1999-4923 Impact factor: 6.321
Figure 1Schematic representation of the inflammatory cascade in allergic asthma.
Molar ratio and mL of poly(ethyleneglycole) (PEG) solution (50 mg/mL) used for synthesis.
| Copolymers | R3 | R4 | R5 | PEG Solution (mL) | PEG Weight Amount (mg) |
|---|---|---|---|---|---|
| PHEA | 0.03 | 0.04 | 1 | 4 | 200 |
| PHEA | 0.075 | 0.1 | 1 | 9.5 | 475 |
| PHEA | 0.12 | 0.16 | 1 | 15 | 750 |
|
R3 = (mmol of aminoPEG/mmol of functionalizable RU on PHEA) | |||||
Figure 2The synthetic route of (a) PHEA-g-bAPAE and (b) PHEA-g-PEG and (c) PHEA-g-PEG-g-bAPAE graft copolymers (n = 44). Reagents and conditions: a) a-DMF, BNPC, 4 h at 40 °C, 20 h at 25 °C; b) a-DMF, DSC, 4 h at 40 °C, 18 h at 25 °C; b) a-DMF, BNPC, 4 h at 40 °C, 20 h at 25 °C.
Weight-average molecular weight (), polydispersity index (, and chemical composition of obtained copolymers.
| Copolymers | Molecular Weight | Degree of Derivatization (DD) | ||
|---|---|---|---|---|
|
|
| DDPEG | DDbAPAE | |
| PHEA | 67500 | 1.24 | --- | --- |
| PHEA | 82,410 | 1.2 | 1.9 | --- |
| PHEA | 95,360 | 1.3 | 2.7 | --- |
| PHEA | 110,800 | 1.3 | 4.4 | --- |
| PHEA | 20,921 | 1.41 | --- | 34 |
| PHEA | 25,400 | 1.32 | 1.9 | 35 |
| PHEA | 32,100 | 1.35 | 2.7 | 36 |
| PHEA | 34,700 | 1.41 | 4.4 | 33 |
Figure 3Acid–base titration profiles (pH versus acid volume) of PHEA-g-bAPAE (0.2 mg/mL) graft copolymer, PHEA (0.2 mg/mL) and bAPAE moieties (0.047 mg/mL).
Figure 4Backward acid–base titration (NaOH volume versus pH) of PHEA-g-bAPAE and De Levie fitting curve.
Figure 5Speciation curves obtained for Plot α versus pH for each α of PHEA-bAPAE PHEA-g-bAPAE and protonation state of PHEA-bAPAE PHEA-g-bAPAE at different pH values.
Figure 6Microscope pictures of 16-HBE treated in different ways: (a) cells treated with PHEA-g-bAPAE in DPBS pH 7.4. (b) cells treated with PHEA-g-bAPAE in isotonic MES 20 mM pH 5, (c) cells treated with DPBS pH 7.4, (d) cells treated with isotonic MES 20 mM pH5.
Figure 7Destabilization assay: absorbance values at 570 nm (trypan blue) in 16-HBE cell dispersion after incubation with PHEA-g-bAPAE copolymer at different pH values.
Figure 8The typical 1H-NMR spectrum of a) PHEA-g-bAPAE (D2O at pD < 5), b) PHEA-g-PEG(C) (D2O), and c) PHEA-g-PEG(C)-g-bAPAE (D2O at pD < 5).
Figure 916-HBE viability assay after (a) 24 and (b) 48 h of incubation with all copolymers.
Figure 10Agarose gel electrophoresis of polyplexes obtained in HEPES 10 mM at various graft copolymer to siRNA weight ratios (R) ranging between 1 and 5.
Figure 11Mean size (blue line), PDI (value enclosed in brakets) and potential (black line) of polyplexes formed by siRNA and: (a) PHEA-g-bAPAE; (b) PHEA-g-PEG(A)-g-bAPAE; (c) PHEA-g-PEG(B)-g-bAPAE; (d) PHEA-g-PEG(C)-g-bAPAE graft copolymers, at weight ratios (R) ranging between 0 and 10 (data are reported as means SD, n = 3).
Figure 12Gel electrophoresis in the presence of mucin, after (a) 2 h and (b) 5 h of incubation, at R = 5 and 10.
Figure 13Turbidimetric analysis. Trasmittance at 500 nm of a dispersion containing mucin in the presence of polyplexes between siRNA and: (a) PHEA-g-bAPAE; (b) PHEA-g-PEG(A)-g-bAPAE; (c) PHEA-g-PEG(B)-g-bAPAE; (d) PHEA-g-PEG(C)-g-bAPAE graft copolymers, at R equal to 3, 5, and 10.
Figure 14IL-4 (%) released by 16-HBE cells after incubation with polyplexes or with naked siRNA for 48 hrs, compared to positive control. (*p < 0.01; **p < 0.001).