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羟基磷灰石(HAp)复合具有形状记忆效应的超细聚合物纤维,有望用于骨螺钉孔愈合。

HAp incorporated ultrafine polymeric fibers with shape memory effect for potential use in bone screw hole healing.

作者信息

Bao Min, Wang Xianliu, Yuan Huihua, Lou Xiangxin, Zhao Qinghua, Zhang Yanzhong

机构信息

College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, 2999 North Renmin Road, Shanghai 201620, China.

出版信息

J Mater Chem B. 2016 Aug 21;4(31):5308-5320. doi: 10.1039/c6tb01305h. Epub 2016 Jul 26.

Abstract

In the clinical setting of bone fracture healing, hardware removal often causes localized microtrauma and residual screw holes may act as stress risers to place the patient at a risk of refracture. To address this noted issue, this study proposed to develop a biologically mimicking and mechanically self-actuated nanofibrous screw-like scaffold/implant for potential in situ bone regeneration. By incorporating nano-hydroxyapatite (HAp) into a shape memory copolymer poly(d,l-lactide-co-trimethylene carbonate) (PLMC) via co-electrospinning, composite nanofibers of HAp/PLMC with various HAp proportions (1, 2 and 3 wt%) were successfully generated. Morphological, thermal and mechanical properties as well as the shape memory effect of the resultant HAp/PLMC nanofibers were characterized using a variety of techniques. Thereafter, osteoblasts isolated from rat calvarial were cultured on the fibrous HAp/PLMC scaffold to assess its suitability for bone regeneration in vitro. We found that agglomerates gradually appeared on the fiber surface with increasing HAp loading fraction. The switching temperature for actuating shape recovery T (i.e., glass transition temperature T) of the fibrous HAp/PLMC was readily modulated to fall between 43.5 and 51.3 °C by varying the HAp loadings. Excellent shape memory properties were achieved for the HAp/PLMC composite nanofibers with a shape recovery ratio of R > 99% and shape fixity ratio of R > 99%, and the shape recovery force of the HAp/PLMC nanofibers was also strengthened compared to that of the HAp-free PLMC nanofibers. Moreover, we demonstrated that the engineered screw-like HAp/PLMC scaffold/implant (ϕ = 5 mm) was able to return from a slender bar to its original stumpy shape in a time frame of merely 8 s at 48 °C. Biological assay results corroborated that the incorporation of HAp to PLMC nanofibers significantly enhanced the alkaline phosphatase secretion as well as mineral deposition in bone formation. These attractive results warrant further investigation in vivo on the feasibility of applying the biomimicking nanofibrous HAp/PLMC scaffold with shape memory effect for bone screw hole healing.

摘要

在骨折愈合的临床环境中,取出内固定物常常会造成局部微创伤,残留的螺钉孔可能会成为应力集中点,使患者面临再次骨折的风险。为了解决这一问题,本研究提出开发一种具有生物模拟和机械自驱动功能的纳米纤维螺旋状支架/植入物,用于潜在的原位骨再生。通过共电纺丝将纳米羟基磷灰石(HAp)掺入形状记忆共聚物聚(d,l-丙交酯-共-三亚甲基碳酸酯)(PLMC)中,成功制备了具有不同HAp比例(1、2和3 wt%)的HAp/PLMC复合纳米纤维。使用多种技术对所得HAp/PLMC纳米纤维的形态、热性能、力学性能以及形状记忆效应进行了表征。此后将从大鼠颅骨分离的成骨细胞接种在纤维状HAp/PLMC支架上,以评估其在体外用于骨再生的适用性。我们发现,随着HAp负载量的增加,纤维表面逐渐出现团聚物。通过改变HAp负载量,纤维状HAp/PLMC驱动形状恢复的转变温度T(即玻璃化转变温度T)很容易调节到43.5至51.3 °C之间。HAp/PLMC复合纳米纤维具有优异的形状记忆性能,形状恢复率R>99%,形状固定率R>99%,与不含HAp的PLMC纳米纤维相比,HAp/PLMC纳米纤维的形状恢复力也得到了增强。此外,我们证明了设计的螺旋状HAp/PLMC支架/植入物(ϕ = 5 mm)在48 °C下仅需8 s就能从细长杆恢复到原来的粗短形状。生物学检测结果证实,将HAp掺入PLMC纳米纤维中可显著增强骨形成过程中的碱性磷酸酶分泌以及矿物质沉积。这些引人注目的结果值得进一步在体内研究应用具有形状记忆效应的仿生纳米纤维HAp/PLMC支架修复骨螺钉孔的可行性。

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