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一锅法制备多孔微球聚集的 3D PCL 支架用于骨组织工程。

One-pot porogen free method fabricated porous microsphere-aggregated 3D PCL scaffolds for bone tissue engineering.

机构信息

School of Ophthalmology and Optometry, Wenzhou Medical University, Wenzhou, Zhejiang, China.

Institute of Advanced Materials for Nano-Bio Applications, Wenzhou Medical University, Wenzhou, Zhejiang, China.

出版信息

J Biomed Mater Res B Appl Biomater. 2020 Aug;108(6):2699-2710. doi: 10.1002/jbm.b.34601. Epub 2020 Mar 10.

Abstract

Three-dimensional (3D) scaffolds with interconnected, hierarchically structured pores, and biomimetic nanostructures are desirable for tissue engineering, where preparation with a facile and biocompatible strategy remains challenging. In the present work, an innovative porous microspheres-aggregated 3D PCL scaffold with macropores, micropores, and nanofibrous-like structures was fabricated through a one-pot thermally induced phase separation (TIPS) method without the use of any porogen or specific instruments. Importantly, the porosity, pore size, and mechanical properties of our scaffolds were tailorable through tuning of the polymer concentration. Interestingly, the bioactivity of our 3D PCL scaffolds was significantly improved, as abundant apatite-like layers were formed on the 3D porous scaffolds, while no obvious apatite was observed on the 2D flat PCL film. Moreover, the high surface area attributed to the hierarchical macro/micro/nanostructure enabled our 3D porous scaffold to serve as a drug delivery depot for sustained release of both small molecule drug (phenamil) and protein (BMP2). In addition to sustained drug release, the hierarchical structure and high mechanical properties also contribute to significantly improving BMP2-induced osteogenic differentiation. In summary, we developed a novel PCL porous scaffold through a facile, one-pot TIPS method and demonstrated its promising potential application in large bone defect repair.

摘要

三维(3D)支架具有相互连接的、层次结构的孔和仿生纳米结构,这对于组织工程是理想的,然而,用简单且生物相容的策略来制备仍然具有挑战性。在本工作中,通过一种无需使用任何致孔剂或特殊仪器的一锅热致相分离(TIPS)方法,制备了具有大孔、微孔和纳米纤维状结构的新型多孔微球聚集 3D PCL 支架。重要的是,通过调节聚合物浓度可以对我们支架的孔隙率、孔径和机械性能进行定制。有趣的是,我们的 3D PCL 支架的生物活性得到了显著提高,因为在 3D 多孔支架上形成了大量类磷灰石层,而在 2D 平板 PCL 膜上则没有观察到明显的磷灰石。此外,由于分层的宏观/微观/纳米结构具有高的比表面积,我们的 3D 多孔支架可用作小分子药物(非那西汀)和蛋白质(BMP2)的药物缓释库。除了持续释放药物外,分层结构和高机械性能还有助于显著提高 BMP2 诱导的成骨分化。总之,我们通过一种简单的、一锅法的 TIPS 方法开发了一种新型 PCL 多孔支架,并证明了其在大骨缺损修复中的有前景的潜在应用。

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