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评价一种自适形、形状记忆聚合物支架在兔颅骨缺损模型中的应用。

Evaluation of a self-fitting, shape memory polymer scaffold in a rabbit calvarial defect model.

机构信息

Department of Biomedical Engineering, Texas A&M University, College Station, Texas 77843, US.

Department of Materials Science and Engineering, Texas A&M University, College Station, Texas 77843, US.

出版信息

Acta Biomater. 2021 Dec;136:233-242. doi: 10.1016/j.actbio.2021.09.041. Epub 2021 Sep 24.

Abstract

Self-fitting scaffolds prepared from biodegradable poly(ε-caprolactone)-diacrylate (PCL-DA) have been developed for the treatment of craniomaxillofacial (CMF) bone defects. As a thermoresponsive shape memory polymer (SMP), with the mere exposure to warm saline, these porous scaffolds achieve a conformal fit in defects. This behavior was expected to be advantageous to osseointegration and thus bone healing. Herein, for an initial assessment of their regenerative potential, a pilot in vivo study was performed using a rabbit calvarial defect model. Exogenous growth factors and cells were excluded from the scaffolds. Key scaffold material properties were confirmed to be maintained following gamma sterilization. To assess scaffold integration and neotissue infiltration along the defect perimeter, non-critically sized (d = 8 mm) bilateral calvarial defects were created in 12 New Zealand white rabbits. Bone formation was assessed at 4 and 16 weeks using histological analysis and micro-CT, comparing defects treated with an SMP scaffold (d = 9 mm x t = 1 or 2 mm) to untreated defects (i.e. defects able to heal without intervention). To further assess osseointegration, push-out tests were performed at 16 weeks and compared to defects treated with poly(ether ether ketone) (PEEK) discs (d = 8.5 mm x t = 2 mm). The results of this study confirmed that the SMP scaffolds were biocompatible and highly conducive to bone formation and ingrowth at the perimeter. Ultimately, this resulted in similar bone volume and surface area versus untreated defects and superior performance in push-out testing versus defects treated with PEEK discs. STATEMENT OF SIGNIFICANCE: Current treatments of craniomaxillofacial (CMF) bone defects include biologic and synthetic grafts but they are limited in their ability to form good contact with adjacent tissue. A regenerative engineering approach using a biologic-free scaffold able to achieve conformal fitting represents a potential "off-the-shelf" surgical product to heal CMF bone defects. Having not yet been evaluated in vivo, this study provided the preliminary assessment of the bone healing potential of self-fitting PCL scaffolds using a rabbit calvarial defect model. The study was designed to assess scaffold biocompatibility as well as bone formation and ingrowth using histology, micro-CT, and biomechanical push-out tests. The favorable results provide a basis to pursue establishing self-fitting scaffolds as a treatment option for CMF defects.

摘要

自适形支架由可生物降解的聚己内酯-二丙烯酸酯(PCL-DA)制备,用于治疗颅颌面(CMF)骨缺损。作为一种热响应形状记忆聚合物(SMP),仅在温盐水中暴露,这些多孔支架即可在缺陷处实现贴合。这种行为有望有利于成骨和骨愈合。在此,为了初步评估其再生潜力,使用兔颅骨缺损模型进行了一项初步的体内研究。支架中未添加外源性生长因子和细胞。经过伽马射线消毒后,确认关键支架材料性能得以保持。为了评估支架的整合和新组织在缺陷周边的渗透,在 12 只新西兰白兔中创建了双侧非临界大小(d=8mm)的颅骨缺损。使用组织学分析和 micro-CT,在 4 周和 16 周时评估骨形成,将 SMP 支架(d=9mm×t=1 或 2mm)治疗的缺陷与未经治疗的缺陷(即无需干预即可愈合的缺陷)进行比较。为了进一步评估骨整合,在 16 周时进行了推出试验,并与用聚醚醚酮(PEEK)盘(d=8.5mm×t=2mm)治疗的缺陷进行了比较。这项研究的结果证实,SMP 支架具有生物相容性,并且非常有利于周边的骨形成和长入。最终,与未经治疗的缺陷相比,骨体积和表面积相似,与 PEEK 盘治疗的缺陷相比,推出试验性能更好。意义声明:目前颅颌面(CMF)骨缺损的治疗方法包括生物和合成移植物,但它们在与相邻组织形成良好接触方面存在局限性。使用能够实现贴合的无生物支架的再生工程方法代表了一种潜在的“现成”手术产品,可用于治疗 CMF 骨缺损。由于尚未在体内进行评估,因此本研究使用兔颅骨缺损模型对自适形 PCL 支架的骨愈合潜力进行了初步评估。该研究旨在通过组织学、micro-CT 和生物力学推出试验评估支架的生物相容性以及骨形成和长入。良好的结果为将自适形支架作为 CMF 缺陷的治疗选择提供了依据。

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