Chen Shixuan, Wang Hongjun, Mainardi Valerio Luca, Talò Giuseppe, McCarthy Alec, John Johnson V, Teusink Matthew J, Hong Liu, Xie Jingwei
Department of Surgery-Transplant and Mary & Dick Holland Regenerative Medicine Program, University of Nebraska Medical Center, Omaha, NE 68198, USA.
Regenerative Medicine Technologies Lab, Ente Ospedaliero Cantonale (EOC), via Tesserete 46, 6900, Lugano, Switzerland.
Sci Adv. 2021 Jul 28;7(31). doi: 10.1126/sciadv.abg3089. Print 2021 Jul.
Biomaterials without exogenous cells or therapeutic agents often fail to achieve rapid endogenous bone regeneration with high quality. Here, we reported a class of three-dimensional (3D) nanofiber scaffolds with hierarchical structure and controlled alignment for effective endogenous cranial bone regeneration. 3D scaffolds consisting of radially aligned nanofibers guided and promoted the migration of bone marrow stem cells from the surrounding region to the center in vitro. These scaffolds showed the highest new bone volume, surface coverage, and mineral density among the tested groups in vivo. The regenerated bone exhibited a radially aligned fashion, closely recapitulating the scaffold's architecture. The organic phase in regenerated bone showed an aligned, layered, and densely packed structure, while the inorganic mineral phase showed a uniform distribution with smaller pore size and an even distribution of stress upon the simulated compression. We expect that this study will inspire the design of next-generation biomaterials for effective endogenous bone regeneration with desired quality.
不含外源性细胞或治疗剂的生物材料往往无法实现高质量的快速内源性骨再生。在此,我们报道了一类具有分级结构和可控排列的三维(3D)纳米纤维支架,用于有效的内源性颅骨再生。由径向排列的纳米纤维组成的3D支架在体外引导并促进了骨髓干细胞从周围区域向中心的迁移。在体内测试组中,这些支架显示出最高的新骨体积、表面覆盖率和矿物质密度。再生骨呈现出径向排列的方式,紧密重现了支架的结构。再生骨中的有机相呈现出排列、分层且紧密堆积的结构,而无机矿物质相则显示出孔径较小的均匀分布以及模拟压缩时应力的均匀分布。我们期望这项研究将激发下一代生物材料的设计,以实现具有所需质量的有效内源性骨再生。