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Porous PCL-PLLA semi-IPNs as superior defect-specific scaffolds with potential for cranial bone defect repair

机译:多孔PCL-PLLA半IPNs是具有缺陷特异性的优良支架具有修复颅骨缺损的潜力

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摘要

The treatment of irregular cranial bone defects is currently limited due to the graft resorption that can occur when an ill-fitting interface exists between an autograft and the surrounding tissue. A tissue engineering scaffold able to achieve defect-specific geometries could improve healing. This work reports a macroporous, shape memory polymer (SMP) scaffold composed of a semi-interpenetrating network (semi-IPN) of thermoplastic poly(L-lactic acid) (PLLA) within cross-linked poly(ε-caprolactone) diacrylate (PCL-DA) that is capable of conformal fit within a defect. The macroporous scaffolds were fabricated using a fused salt template and were also found to have superior, highly-controlled properties needed for regeneration. Specifically, the scaffolds displayed interconnected pores, improved rigidity and controlled, accelerated degradation. While slow degradation rates of scaffolds can limit healing, the unique degradation behavior observed could prove promising. Thus, the described SMP semi-IPN scaffolds overcome two of the largest limitations in bone tissue engineering – defect “fit” and tailored degradation.
机译:由于当自体移植物和周围组织之间存在不合适的界面时,会发生移植物吸收,目前对不规则颅骨缺损的治疗受到了限制。能够实现缺陷特定几何形状的组织工程支架可以改善愈合。这项工作报告了一个大孔的形状记忆聚合物(SMP)支架,该支架由交联的聚(ε-己内酯)二丙烯酸酯(PCL)中的热塑性聚(L-乳酸)(PLLA)的半互穿网络(semi-IPN)组成-DA)能够在缺陷内进行保形拟合。大孔支架是使用熔融盐模板制造的,并且还具有再生所需的优越的,高度受控的特性。具体而言,支架显示出相互连接的孔,改善的刚度以及受控的加速降解。尽管脚手架的缓慢降解速度可能会限制愈合,但观察到的独特降解行为可能会证明很有希望。因此,所描述的SMP半IPN支架克服了骨组织工程中的两个最大限制-缺陷“适合”和特制的降解。

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