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Development And Application Of Biomimetic Electrospun Nanofibers In Total Joint Replacement

机译:仿生电纺纳米纤维在全关节置换术中的开发与应用

摘要

Failure of osseointegration (direct anchorage of an implant by bone formation at the bone-implant surface) and implant infection (such as that caused by Staphylococcus aureus, S. aureus) are the two main causes of implant failure and loosening. There is a critical need for orthopedic implants that promote rapid osseointegration and prevent bacterial colonization, particularly when placed in bone compromised by disease or physiology of the patients. A better understanding of the key factors that influence cell fate decisions at the bone-implant interface is required. Our study is to develop a class of u22bone-likeu22 nanofibers (NFs) that promote osseointegration while preventing bacterial colonization and subsequent infections. This research goal is supported by our preliminary data on the preparation of coaxial electrospun NFs composed of polycaprolactone (PCL) and polyvinyl alcohol (PVA) polymers arranged in a core-sheath shape. The PCL/PVA NFs are biocompatible and biodegradable with appropriate fiber diameter, pore size and mechanical strength, leading to enhanced cell adhesion, proliferation and differentiation of osteoblast precursor cells. The objective is to develop functionalized u22bone-likeu22 PCL/PVA NFs matrix embedded with antibiotics (doxycycline (Doxy), bactericidal and anti-osteoclastic) on prosthesis surface. Through a rat tibia implantation model, the Doxy incorporated coaxial NFs has demonstrated excellent in promoting osseointegration and bacteria inhibitory efficacy. NFs coatings significantly enhanced the bonding between implant and bone remodeling within 8 weeks. The SA-induced osteomyelitis was prevented by the sustained release of Doxy from NFs. The capability of embedding numerous bio-components including proteins, growth factors, drugs, etc. enables NFs an effective solution to overcome the current challenged issue in Total joint replacement. In summary, we proposed PCL/PVA electrospun nanofibers as promising biomaterials that can be applied on joint replacement prosthesis to improve osseointegration and prevent osteomyelitis.
机译:骨整合失败(通过在骨植入物表面的骨形成直接锚定植入物)和植入物感染(例如由金黄色葡萄球菌,金黄色葡萄球菌引起的植入物)是植入物失败和松弛的两个主要原因。迫切需要能够促进快速骨整合并防止细菌定植的整形外科植入物,尤其是当将其放置在受患者疾病或生理损害的骨骼中时。需要更好地了解影响骨植入物界面细胞命运决定的关键因素。我们的研究是开发一类 u22b骨类 u22纳米纤维(NFs),该纤维可促进骨整合,同时防止细菌定植和随后的感染。我们关于制备由聚己内酯(PCL)和聚乙烯醇(PVA)聚合物以芯-皮形状排列的同轴电纺NF的初步数据支持了该研究目标。 PCL / PVA NF具有适当的纤维直径,孔径和机械强度,具有生物相容性和可生物降解性,可增强成骨细胞前体细胞的细胞粘附,增殖和分化能力。目的是开发在假体表面上嵌入抗生素(强力霉素(Doxy),杀菌性和抗破骨性)的功能化 u22bone-like uL PCL / PVA NFs基质。通过大鼠胫骨植入模型,结合Doxy的同轴NFs在促进骨整合和细菌抑制功效方面表现出色。 NFs涂层在8周内显着增强了植入物与骨骼重塑之间的结合。 Doxy从NFs的持续释放可预防SA诱导的骨髓炎。嵌入多种生物成分(包括蛋白质,生长因子,药物等)的能力使NFs成为一种有效的解决方案,可以克服目前在全关节置换中面临的难题。总之,我们提出PCL / PVA电纺纳米纤维是有前途的生物材料,可用于关节置换假体,以改善骨整合并预防骨髓炎。

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    Song Wei;

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  • 年度 2014
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