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Laser-assisted nanoceramics reinforced polymer scaffolds for tissue engineering: additional heating and stem cells behavior

机译:用于组织工程的激光辅助纳米陶瓷增强聚合物支架:额外的加热和干细胞性能

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The conditions of selective laser melting (SLM) of tissue engineering scaffolds affect cell response and must be engineered to support cell adhesion, proliferation, and differentiation. In the present study, the influence of additional heating during SLM process on stem cell viability near biopolymer matrix reinforced by nanoceramics additives was carried out. We used the biocompatible and bioresorbable polymers (polyetheretherketone /PEEK/ and polycaprolactone /PCL/) as a matrix and nano-oxide ceramics - TiO_2. Al_2O_3, ZrO_2, FexOy and/or hydroxyapatite as a basis of the additives. The rate of pure PEEK and PCL bio-resorption and in mixtures with nano oxides on the matrix was studied by the method of mass loss on bacteria of hydroxylase and enzyme complex. The stem cellular morphology, proliferative MMSC activity, and adhesion of the 2D and 3D nanocomposite matrices were the subjects of comparison. Medical potential of the SLS/M-fabricated nano-oxide ceramics after additional heating as the basis for tissue engineering scaffolds and cell targeting systems were discussed.
机译:组织工程支架的选择性激光熔化(SLM)条件会影响细胞反应,必须对其进行工程设计以支持细胞粘附,增殖和分化。在本研究中,进行了SLM过程中额外加热对纳米陶瓷添加剂增强的生物聚合物基质附近干细胞活力的影响。我们使用具有生物相容性和生物可吸收性的聚合物(聚醚醚酮/ PEEK /和聚己内酯/ PCL /)作为基质和纳米氧化物陶瓷-TiO_2。 Al_2O_3,ZrO_2,FexOy和/或羟基磷灰石作为添加剂的基础。用羟酶和酶复合物对细菌的质量损失方法研究了纯PEEK和PCL的生物吸收率以及在基质上与纳米氧化物混合时的吸收率。比较的主题是干细胞形态,增殖性MMSC活性以及2D和3D纳米复合材料基质的粘附性。讨论了将SLS / M制造的纳米氧化物陶瓷在额外加热后作为组织工程支架和细胞靶向系统的基础的医学潜力。

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