首页> 外文期刊>Journal of Ultrafine Grained and Nanostructured Materials >3D Scaffold Designing based on Conductive/Degradable Tetrapolymeric Nanofibers of PHEMA-co-PNIPAAm-co-PCL/PANI for Bone Tissue Engineering
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3D Scaffold Designing based on Conductive/Degradable Tetrapolymeric Nanofibers of PHEMA-co-PNIPAAm-co-PCL/PANI for Bone Tissue Engineering

机译:基于PHEMA-co-PNIPAAm-co-PCL / PANI的导电/可降解四聚物纳米纤维的3D支架设计,用于骨组织工程。

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The hydrophilic, conducting, biocompatible and porous scaffolds were designed using poly(2-hydroxy ethyl methacrylate)-co-poly(N-isopropylacrylamide)-co-poly(ε-caprolactone) (P(HEMA-b-NIPAAm-b-CL))/polyaniline (PANI) for the osteoblast applications. To this end, the PHEMA and P(HEMA-b-NIPAAm) were synthesized via reversible addition of fragmentation chain transfer (RAFT) polymerization, and in next step, the ε-caprolactone was polymerized from –OH group of PHEMA segments through the ring opening polymerization (ROP). The electroactivity, mechanical properties, and hydrophilicity of designed scaffolds played an important role in the adhesion, differentiation, and proliferation of MG63 cells. By using the PHEMA and PNIPAAm, the hydrophilicity and biocompatibility, and by employing the PCL, the appropriate mechanical properties were acquired. The addition of PANI in the composition induced the conductivity to scaffolds. The morphology, electrical conductivity, biocompatibility, hydrophilicity and mechanical characteristics of the nanofibers were thoroughly investigated. The scaffolds possessed a porous nanostructure (nanofiber diameter ranged in 60–130 nm) with a large surface area, electrical conductivity of 0.03 S cm–1 and contact angle of 49 ± 5 ? , which imitated the natural microenvironment of extra cellular matrix (ECM) to regulate the cell attachment, proliferation and differentiation. In vitro cytocompatibility studies were performed over 168 h and indicated that the nanofibers were non-toxic to MG63 cells and potent to the artificial nanostructured osteoblasting.
机译:使用聚(甲基丙烯酸2-羟乙酯)-共聚(N-异丙基丙烯酰胺)-共聚(ε-己内酯)(P(HEMA-b-NIPAAm-b-CL) )/聚苯胺(PANI)用于成骨细胞。为此,通过可逆添加断裂链转移(RAFT)聚合反应合成了PHEMA和P(HEMA-b-NIPAAm),然后在下一步中,从PHEMA链段的-OH基团通过环聚合了ε-己内酯开放聚合(ROP)。设计的支架的电活性,机械性能和亲水性在MG63细胞的粘附,分化和增殖中起着重要作用。通过使用PHEMA和PNIPAAm,具有亲水性和生物相容性,并且通过使用PCL,可以获得适当的机械性能。在组合物中添加PANI诱导了对支架的导电性。对纳米纤维的形貌,电导率,生物相容性,亲水性和机械特性进行了深入研究。支架具有多孔的纳米结构(纳米纤维直径范围为60–130 nm),具有较大的表面积,0.03 S cm-1的电导率和49±5?的接触角。模仿细胞外基质(ECM)的天然微环境来调节细胞附着,增殖和分化。进行了超过168小时的体外细胞相容性研究,结果表明纳米纤维对MG63细胞无毒,对人工纳米结构的成骨细胞有效。

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