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Bioactive nano‐fibrous scaffold for vascularized craniofacial bone regeneration

机译:用于血管化颅面骨再生的生物活性纳米纤维支架

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Abstract There has been a growing demand for bone grafts for correction of bone defects in complicated fractures or tumours in the craniofacial region. Soft flexible membrane like material that could be inserted into defect by less invasive approaches; promote osteoconductivity and act as a barrier to soft tissue in growth while promoting bone formation is an attractive option for this region. Electrospinning has recently emerged as one of the most promising techniques for fabrication of extracellular matrix such as nano‐fibrous scaffolds that can serve as a template for bone formation. To overcome the limitation of cell penetration of electrospun scaffolds and improve on its osteoconductive nature, in this study, we fabricated a novel electrospun composite scaffold of polyvinyl alcohol (PVA)‐poly (ε) caprolactone (PCL)‐Hydroxyapatite based bioceramic (HAB), namely, PVA‐PCL‐HAB. The scaffold prepared by dual electrospinning of PVA and PCL with HAB overcomes reduced cell attachment associated with hydrophobic PCL by combination with a hydrophilic PVA and the HAB can contribute to enhance osteoconductivity. We characterized the physicochemical and biocompatibility properties of the new scaffold material. Our results indicate PVA‐PCL‐HAB scaffolds support attachment and growth of stromal stem cells; [human bone marrow skeletal (mesenchymal) stem cells and dental pulp stem cells]. In addition, the scaffold supported in vitro osteogenic differentiation and in vivo vascularized bone formation. Thus, PVA‐PCL‐HAB scaffold is a suitable potential material for therapeutic bone regeneration in dentistry and orthopaedics.
机译:摘要对骨移植的需求不断增长,以便在颅面区的复杂骨折或肿瘤中校正骨缺陷。软柔性膜,如可以通过较少的侵入方法插入缺陷;促进骨导电性并作为增长中软组织的屏障,同时促进骨形成是该地区的有吸引力的选择。静电纺丝最近被出现为制备细胞外基质的最有前途的技术之一,例如纳米纤维支架,其可以用作骨形成的模板。为了克服电纺支架细胞渗透和改善其骨导电性质的限制,在这项研究中,我们制造了一种新型电纺器复合支架的聚乙烯醇(PVA) - 聚(ε)己内酯(PCL) - 羟基磷灰石(PCL)的生物陶瓷(HAB) ,即pva-pcl-hab。通过HAB的PVA和PCL双静电素制备的支架克服了通过与亲水PVA的组合与疏水PCL相关的降低的细胞附着,并且HAB可以有助于提高骨导电性。我们以新的支架材料的物理化学和生物相容性特性为特征。我们的结果表明PVA-PCL-HAB支架支持基质干细胞的附着和生长; [人骨髓骨骼(间充质)干细胞和牙髓干细胞]。此外,支架支持体外骨质发生分化和体内血管化骨形成。因此,PVA-PCL-HAB支架是牙科和骨科在牙科和骨科的治疗骨再生的合适潜在材料。

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