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用于硬组织应用的具有增强界面结合的一体化三相反钙磷骨水泥-海藻酸盐支架的 3D 打印。

3D printing of an integrated triphasic MBG-alginate scaffold with enhanced interface bonding for hard tissue applications.

机构信息

School of Materials Science and Engineering, University of Shanghai for Science and Technology, Shanghai, PR China.

Department of Orthopedics, Changhai Hospital, Second Military Medical University, Shanghai, PR China.

出版信息

J Mater Sci Mater Med. 2020 Nov 28;31(12):113. doi: 10.1007/s10856-020-06459-6.

Abstract

Osteochondral defects affect both of cartilage and subchondral areas, thus it poses a significant challenge to simultaneously regenerate two parts in orthopedics. Tissue engineering strategy is currently regarded as the most promising way to repair osteochondral defects. This study focuses on developing a multilayered scaffold with enhanced interface bonding through 3D printing. One-shot printing process enables control over material composition, pore structure, and size in each region of the scaffold, while realizes seamlessly integrated construct as well. The scaffold was designed to be triphasic: a porous bone layer composed of alginate sodium (SA) and mesoporous bioactive glasses (MBG), an intermediate dense layer also composed of SA and MBG and a cartilaginous layer composed of SA. The mechanical strength including the interface adhesion strength between layers were characterized. The results indicated that SA crosslinking after 3D printing anchored different materials together and integrated all regions. Additional scaffold soaking in simulated body fluid (SBF) and cell culture medium induced apatite deposition and had weakened the compressive and tensile strengths, while no layer dislocation or delamination occurred.

摘要

软骨下骨缺损同时累及软骨和软骨下区域,这给骨科同时修复这两部分带来了巨大的挑战。组织工程策略目前被认为是修复软骨下骨缺损最有前途的方法。本研究专注于通过 3D 打印开发一种具有增强界面结合的多层支架。一次打印工艺可控制支架中每个区域的材料组成、孔结构和大小,同时还可实现无缝集成。该支架设计为三相:由海藻酸钠(SA)和中孔生物活性玻璃(MBG)组成的多孔骨层、同样由 SA 和 MBG 组成的中间致密层和由 SA 组成的软骨层。对包括层间界面黏附强度在内的机械强度进行了表征。结果表明,3D 打印后 SA 的交联将不同的材料固定在一起并整合了所有区域。支架在模拟体液(SBF)和细胞培养基中的进一步浸泡诱导了磷灰石的沉积,从而降低了压缩和拉伸强度,但没有发生层间错位或分层。

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