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壳聚糖纳米纤维/壳聚糖液晶水凝胶辅助仿生 ECM 微环境支架用于骨再生。

Chitin whisker/chitosan liquid crystal hydrogel assisted scaffolds with bone-like ECM microenvironment for bone regeneration.

机构信息

Biomaterial Research Laboratory, Department of Material Science and Engineering, College of Chemistry and Materials, Jinan University, Guangzhou 510632, PR China.

Biomaterial Research Laboratory, Department of Material Science and Engineering, College of Chemistry and Materials, Jinan University, Guangzhou 510632, PR China; Engineering Research Center of Artificial Organs and Materials, Ministry of Education, Guangzhou 510632, PR China.

出版信息

Carbohydr Polym. 2024 May 15;332:121927. doi: 10.1016/j.carbpol.2024.121927. Epub 2024 Feb 8.

Abstract

Natural bone exhibits a complex anisotropic and micro-nano hierarchical structure, more importantly, bone extracellular matrix (ECM) presents liquid crystal (LC) phase and viscoelastic characteristics, providing a unique microenvironment for guiding cell behavior and regulating osteogenesis. However, in bone tissue engineering scaffolds, the construction of bone-like ECM microenvironment with exquisite microstructure is still a great challenge. Here, we developed a novel polysaccharide LC hydrogel supported 3D printed poly(l-lactide) (PLLA) scaffold with bone-like ECM microenvironment and micro-nano aligned structure. First, we prepared a chitin whisker/chitosan polysaccharide LC precursor, and then infuse it into the pores of 3D printed PLLA scaffold, which was previously surface modified with a polydopamine layer. Next, the LC precursor was chemical cross-linked by genipin to form a hydrogel network with bone-like ECM viscoelasticity and LC phase in the scaffold. Subsequently, we performed directional freeze-casting on the composite scaffold to create oriented channels in the LC hydrogel. Finally, we soaked the composite scaffold in phytic acid to further physical cross-link the LC hydrogel through electrostatic interactions and impart antibacterial effects to the scaffold. The resultant biomimetic scaffold displays osteogenic activity, vascularization ability and antibacterial effect, and is expected to be a promising candidate for bone repair.

摘要

天然骨具有复杂的各向异性和微纳分级结构,更重要的是,骨细胞外基质(ECM)呈现液晶(LC)相和黏弹性特征,为细胞行为提供了独特的微环境导向和骨生成调节。然而,在骨组织工程支架中,构建具有精细微观结构的类骨 ECM 微环境仍然是一个巨大的挑战。在这里,我们开发了一种新型多糖 LC 水凝胶支撑的具有类骨 ECM 微环境和微纳定向结构的 3D 打印聚(L-丙交酯)(PLLA)支架。首先,我们制备了壳聚糖多糖 LC 前体,然后将其注入经过聚多巴胺层表面改性的 3D 打印 PLLA 支架的孔隙中。接下来,通过京尼平化学交联 LC 前体,在支架中形成具有类骨 ECM 黏弹性和 LC 相的水凝胶网络。随后,我们对复合支架进行定向冷冻铸造,在 LC 水凝胶中创建定向通道。最后,我们将复合支架浸泡在植酸中,通过静电相互作用进一步物理交联 LC 水凝胶,并赋予支架抗菌作用。所得仿生支架具有成骨活性、血管生成能力和抗菌作用,有望成为骨修复的有前途的候选物。

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