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A new biodegradable nanocomposite based on polyhedral oligomeric silsesquioxane nanocages: cytocompatibility and investigation into electrohydrodynamic jet fabrication techniques for tissue-engineered scaffolds

机译:一种基于多面体低聚倍半硅氧烷纳米笼的新型可生物降解纳米复合材料:细胞相容性和组织工程支架的电动水力喷射制造技术研究

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Our group has developed a non-biodegradable nanocomposite based on POSS (polyhedral oligomeric silsesquioxane) nanocages with PCU [poly(carbonate urethane)] and previous studies have shown good cell-compatibility and antithrombogenic properties. The latest biodegradable formulation is a POSS-modified poly(hexanolactone/carbonate)urethane/urea containing 80% hexanolactone (caprolactone) with the trade-name UCL-NanoBio (TM). The direct effect of the polymer on cells was investigated by seeding stem cells on to circular discs of the polymer in 24-well plates; these discs were prepared mainly by electrohydrodynamic jetting. To assess the indirect effect of the polymer, various concentrations of the polymer powder were added to CCM (cell culture medium) and left on a shaker for 10 days. The precipitate was then removed and the CCM was used for culturing the cells seeded on to 24-well plates. Cell viability and growth at 48 and 96 h were assessed using Alamar Blue (TM) and lactate dehydrogenase, and morphology was studied by scanning electron microscopy. Cells were shown to adhere well to the polymer, with cell metabolism being comparable with that found on TCP (tissue-culture plastic). Indirect assessment demonstrated some decrease in cell viability with high concentrations of polymer, but showed no difference in cell death between polymer concentrations. The viability of cells seeded on to the polymer was comparable with that of those seeded on to TCP. Cell viability was comparable on both electrosprayed and electrospun scaffolds, but infiltration into the scaffold was much more evident on the electrospun scaffolds. It can be concluded that this new nanocomposite can support the growth and viability of stem cells and that scaffolds of this polymer nanocomposite fabricated by electrohydrodynamic jetting routes have potential use for tissue engineering in the future.
机译:我们的小组开发了一种基于POSS(多面体低聚倍半硅氧烷)纳米笼和PCU [poly(carbonate urethane)]的不可生物降解的纳米复合材料,以前的研究表明它们具有良好的细胞相容性和抗血栓形成特性。最新的可生物降解制剂是POSS改性的聚(己内酯/碳酸酯)氨基甲酸酯/脲,其中含有80%己内酯(己内酯),商品名为UCL-NanoBio(TM)。通过将干细胞接种到24孔板中聚合物的圆盘上,研究了聚合物对细胞的直接作用。这些光盘主要通过电动流体喷射制备。为了评估聚合物的间接作用,将各种浓度的聚合物粉末添加到CCM(细胞培养基)中,并在振荡器上放置10天。然后除去沉淀物,并将CCM用于培养接种到24孔板上的细胞。使用Alamar Blue(TM)和乳酸脱氢酶评估细胞在48和96 h的活力和生长,并通过扫描电子显微镜研究其形态。显示细胞可以很好地粘附到聚合物上,其细胞代谢与TCP(组织培养塑料)上的代谢相当。间接评估表明,高浓度的聚合物会降低细胞活力,但不同浓度的聚合物在细胞死亡方面无差异。接种到聚合物上的细胞的活力与接种到TCP上的细胞的活力相当。在电喷雾支架和电纺支架上,细胞活力是可比的,但是在电纺支架上,渗透到支架中更加明显。可以得出结论,这种新的纳米复合材料可以支持干细胞的生长和生存力,并且通过电液动力喷射途径制造的这种聚合物纳米复合材料的支架在未来的组织工程中具有潜在的用途。

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