| Literature DB >> 28684725 |
Esperanza Díaz1,2, Igor Puerto3, Silvie Ribeiro4, Senentxu Lanceros-Mendez5,6,7, José Manuel Barandiarán8.
Abstract
The influence of copolymer composition on Poly(Lactide-co-Glycolide)/nanohydroxyapatite (PLGA/nHA) composite scaffolds is studied in the context of bone tissue engineering and regenerative medicine. The composite scaffolds are fabricated by thermally-induced phase separation and the effect of bioactive nanoparticles on their in vitro degradation in phosphate-buffered solution at 37 °C is analyzed over eight weeks. The indirect cytotoxicity evaluation of the samples followed an adaptation of the ISO 10993-5 standard test method. Based on the measurement of their molecular weight, molar mass, pH, water absorption and dimensions, the porous scaffolds of PLGA with a lower lactide/glycolide (LA/GA) molar ratio degraded faster due to their higher hydrophilicity. All of the samples without and with HA are not cytotoxic, demonstrating their potential for tissue engineering applications.Entities:
Keywords: PLGA; cytotoxicity; in vitro degradation; nHA; scaffolds
Year: 2017 PMID: 28684725 PMCID: PMC5535239 DOI: 10.3390/nano7070173
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1MTT cytotoxicity assays of MC3T3-E1 pre-osteoblast in contact with the as-prepared extraction media exposed to PLGA and PLGA composites with 30 and 50% nHA.
Figure 2Cell morphology of MC3T3-E1 pre-osteoblasts seeded on PLGA 75/25 (a) 10% nHA; and (b) 50% nHA samples after three days obtained by SEM. The scale bar is 10 µm for all samples.
Mw, Mn and I as a function of degradation time for PLGA (53/47) and PLGA (53/47)/nHA composite scaffolds.
| Degradation Time (Weeks) | PLGA 53/47 | |
|---|---|---|
| 0% nHA | 30% nHA | |
| 0 | 94,800 | 94,800 |
| 1 | 29,916 | 58,670 |
| 2 | - | 35,425 |
| 3 | 890.7 | 23,106 |
| 4 | - | 23,811 |
| 6 | - | 22,141 |
| 8 | - | 22,936 |
| 0 | 65,600 | 65,600 |
| 1 | 16,688 | 33,744 |
| 2 | - | 10,708 |
| 3 | 430 | 10,831 |
| 4 | - | 11,690 |
| 6 | - | 15,644 |
| 8 | - | 10,923 |
| 0 | 1.445 | 1.445 |
| 2 | 1.792 | 1.738 |
| 3 | - | 3.308 |
| 4 | 2.071 | 2.133 |
| 6 | - | 1.415 |
| 8 | - | 2.099 |
Mw, Mn and I as a function of degradation time for PLGA (75/25) and PLGA (75/25)/nHA composite scaffolds.
| Degradation Time (Weeks) | PLGA 75/25 | |||
|---|---|---|---|---|
| 0% nHA | 10% nHA | 30% nHA | 50% nHA | |
| 0 | 86,985 | 86,985 | 86,985 | 86,985 |
| 2 | 73,311 | 79,604 | 78,758 | 79,455 |
| 3 | 72,334 | 75,392 | 73,433 | 78,577 |
| 4 | 66,296 | 75,368 | 69,166 | 72,973 |
| 6 | 56,212 | 68,749 | 57,371 | 66,178 |
| 8 | 39,979 | 56,101 | 49,760 | 58,429 |
| 0 | 53,533 | 53,533 | 53,533 | 53,533 |
| 2 | 46,131 | 48,388 | 48,979 | 43,404 |
| 3 | 42,983 | 43,884 | 44,238 | 45,835 |
| 4 | 39,782 | 45,490 | 41,345 | 41,808 |
| 6 | 33,430 | 40,419 | 32,253 | 38,109 |
| 8 | 19,524 | 31,412 | 29,689 | 33,255 |
| 0 | 1.650 | 1.625 | 1.625 | 1.625 |
| 2 | 1.589 | 1.645 | 1.608 | 1.830 |
| 3 | 1.682 | 1.718 | 1.659 | 1.714 |
| 4 | 1.666 | 1.656 | 1.672 | 1.745 |
| 6 | 1.681 | 1.701 | 1.778 | 1.736 |
| 8 | 2.047 | 1.786 | 1.676 | 1.757 |
Figure 3Mass loss of: (a) PLGA (53/47)/nHA; and (b) PLGA (75/25)/nHA, composite scaffolds against degradation time.
Figure 4Water absorption for: (a) PLGA (53/47)/nHA; and (b) PLGA (75/25)/nHA composite scaffolds as a function of degradation time.
Figure 5pH change of phosphate-buffered solution for: (a) PLGA (53/47)/nHA; and (b) PLGA (75/25)/nHA composite scaffolds against degradation time.
Figure 6Thermograms of PLGA (53/47) and PLGA (75/25).
Tgs of PLGA (53/47) and PLGA (53/47)/nHA composite scaffolds.
| Degradation Time (Weeks) | Tg (°C) | |||
|---|---|---|---|---|
| nHA 0% | nHA 10% | nHA 30% | nHA 50% | |
| 0 | 18.2 | 30.2 | 32.8 | 28.9 |
| 1 | 44.2 | 33.7 | 34.4 | 30.7 |
| 2 | N/A | 35.9 | 36.3 | 33.5 |
| 3 | N/A | 38.4 | 39.4 | 38.8 |
| 4 | N/A | 35.9 | 43.7 | 43.5 |
| 6 | N/A | N/A | 40.2 | 40.6 |
| 8 | N/A | N/A | 40.1 | 40.9 |
Tgs of PLGA (75/25) and PLGA (75/25)/nHA composite scaffolds.
| Degradation Time (Week) | Tg (°C) | |||
|---|---|---|---|---|
| nHA 0% | nHA 10% | nHA 30% | nHA 50% | |
| 0 | 51.5 | 50.4 | 52.9 | 51.0 |
| 1 | 52.2 | 52.8 | 51.9 | 51.8 |
| 2 | 51.8 | 52.1 | 51.5 | 53.1 |
| 3 | 52.6 | 52.2 | 51.9 | 52.5 |
| 4 | 52.1 | 52.4 | 51.8 | 52.8 |
| 6 | 52.1 | 52.1 | 51.9 | 52.9 |
| 8 | 51.0 | 51.9 | 52.1 | 52.5 |
Figure 7(a) FTIR spectra of nHA, PLGA (75/25) and PLGA (75/25)/nHA 10%; (b) FTIR spectra of PLGA (75/25) and PLGA (75/25)/nHA 30% after various degradation times.
Figure 8SEM observation of surface morphology of PLGA. (a) PLGA (53/47) before degradation; (b) PLGA (53/47) after in vitro degradation for three weeks; (c) PLGA (53/47)/nHA 50% before degradation; (d) PLGA (53/47)/nHA 50% after in vitro degradation for six weeks; (e) PLGA (75/25) before degradation; (f) PLGA (75/25) after in vitro degradation for eight weeks; (g) PLGA (75/25)/nHA 50% before degradation; (h) PLGA (75/25)/nHA 50% after in vitro degradation for eight weeks.