首页> 美国卫生研究院文献>Tissue Engineering. Part A >Elastomeric Osteoconductive Synthetic Scaffolds with Acquired Osteoinductivity Expedite the Repair of Critical Femoral Defects in Rats
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Elastomeric Osteoconductive Synthetic Scaffolds with Acquired Osteoinductivity Expedite the Repair of Critical Femoral Defects in Rats

机译:具有获得性骨诱导性的弹性骨传导合成支架可加快大鼠关键股骨缺损的修复。

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摘要

Regenerative medicine aspires to reduce reliance on or overcome limitations associated with donor tissue-mediated repair. Structural bone allografts are commonly used in orthopedic surgery, with a high percentage of graft failure due to poor tissue integration. This problem is aggravated among elderly, those suffering from metabolic conditions, or those undergoing cancer therapies that compromise graft healing. Toward this end, we developed a synthetic graft named FlexBone, in which nanocrystalline hydroxyapatite (50 wt%) was structurally integrated with crosslinked poly(hydroxyethyl methacrylate) hydrogel, which provides dimensional stability and elasticity. It recapitulates the essential role of nanocrystalline hydroxyapatite in defining the osteoconductivity and biochemical microenvironment of bone because of its affinity for biomolecules. Here, we demonstrate that FlexBone effectively absorbed endogenously secreted signaling molecules associated with the inflammation/graft healing cascade upon being press-fit into a 5-mm rat femoral segmental defect. Further, when preabsorbed with a single dose of 400 ng recombinant human (rh) bone morphogenetic protein-2/7 heterodimer, it enabled the functional repair of the critical-sized defect by 8–12 weeks. FlexBone was stably encapsulated by the bridging bony callus and the FlexBone–callus interface was continuously remodeled. In summary, FlexBone combines the dimensional stability and osteoconductivity of structural bone allografts with desirable surgical compressibility and acquired osteoinductivity in an easy-to-fabricate and scalable synthetic biomaterial.
机译:再生医学渴望减少对供体组织介导的修复的依赖或克服其局限性。结构骨同种异体移植通常用于整形外科,由于不良的组织整合,移植失败率很高。在老年人,患有代谢疾病的人或正在接受损害移植物愈合的癌症治疗的人中,这个问题更加严重。为此,我们开发了一种名为FlexBone的合成接枝,其中纳米晶羟基磷灰石(50%wt%)与交联的聚(甲基丙烯酸羟乙酯)水凝胶在结构上整合在一起,从而提供了尺寸稳定性和弹性。它概述了纳米晶羟基磷灰石在定义骨的骨传导性和生化微环境中的重要作用,因为它对生物分子具有亲和力。在这里,我们证明FlexBone在压入5mm大鼠股骨节段缺损时有效吸收了与炎症/移植物愈合级联相关的内源性分泌信号分子。此外,当用单剂量的400μng重组人(rh)骨形态发生蛋白2/7异二聚体预吸收时,它可以在8-12周内修复关键大小的缺损。 FlexBone被桥接的骨性愈伤组织稳定地包裹,并且FlexBone-愈伤组织的界面不断地被重塑。总而言之,FlexBone在易于制造且可扩展的合成生物材料中将结构性同种异体骨的尺寸稳定性和骨传导性与所需的手术可压缩性和获得的骨诱导性结合在一起。

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