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Preparing nanocomposite fibrous scaffolds of P3HBHA for bone tissue engineering

机译:制备用于骨组织工程的P3HB / nHA纳米复合纤维支架

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Nanocomposites are recently known to be among the most successful materials in biomedical applications. In this work we sought to fabricate fibrous scaffolds which can mimic the extra cellular matrix of cartilaginous connective tissue not only to a structural extent but with a mechanical and biological analogy. Poly(3-hydroxybutyrate) (P3HB) matrices were reinforced with 5, 10 and 15 %wt hydroxyapatite (HA) nanoparticles and electrospun into nanocomposite fibrous scaffolds. Mechanical properties of each case were compared with that of a P3HB scaffold produced in the same processing condition. Spectroscopic and morphological observations were used for detecting the interaction quality between the constituents. Nanoparticles rested deep within the fibers of 1 µm in diameter. Chemical interactions of hydrogen bonds linked the constituents through the interface. Maximum elastic modulus and mechanical strength was obtained with the presence of 5%wt hydroxyapatite nanoparticles. Above 10%wt, nanoparticles tended to agglomerate and caused the entity to lose its mechanical performance; however, viscoelasticity interfered at this concentration and lead to a delayed failure. In other words, higher elongation at break and a massive work of rupture was observed at 10%wt.
机译:最近已知纳米复合材料是生物医学应用中最成功的材料之一。在这项工作中,我们试图制造一种纤维支架,该支架不仅可以在结构上而且在力学和生物学上都可以模拟软骨结缔组织的细胞外基质。用5%,10和15%wt的羟基磷灰石(HA)纳米颗粒增强聚(3-羟基丁酸)(P3HB)基质,并电纺成纳米复合纤维支架。将每种情况下的机械性能与在相同加工条件下生产的P3HB支架的机械性能进行了比较。使用光谱学和形态学观察来检测成分之间的相互作用质量。纳米粒子深埋在直径为1 µm的纤维内。氢键的化学相互作用通过界面连接各成分。在5重量%的羟基磷灰石纳米粒子的存在下获得最大的弹性模量和机械强度。高于10%wt时,纳米粒子趋于团聚并导致实体失去其机械性能。然而,粘弹性在该浓度下会干扰并导致延迟的破坏。换句话说,在10wt%时观察到较高的断裂伸长率和大量的断裂功。

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