National Engineering Research Center for Biomaterials, Sichuan University, 29# Wangjiang Road, Chengdu, 610064, P. R. China.
College of Biomedical Engineering, Sichuan University, 29# Wangjiang Road, Chengdu, 610064, P. R. China.
Small. 2023 May;19(19):e2206960. doi: 10.1002/smll.202206960. Epub 2023 Feb 11.
Integrating a biomimetic extracellular matrix to improve the microenvironment of 3D printing scaffolds is an emerging strategy for bone substitute design. Here, a "soft-hard" bone implant (BM-g-DPCL) consisting of a bioactive matrix chemically integrated on a polydopamine (PDA)-coated porous gradient scaffold by polyphenol groups is constructed. The PDA-coated "hard" scaffolds promoted Ca chelation and mineral deposition; the "soft" bioactive matrix is beneficial to the migration, proliferation, and osteogenic differentiation of stem cells in vitro, accelerated endogenous stem cell recruitment, and initiated rapid angiogenesis in vivo. The results of the rabbit cranial defect model (Φ = 10 mm) confirmed that BM-g-DPCL promoted the integration between bone tissue and implant and induced the deposition of bone matrix. Proteomics confirmed that cytokine adhesion, biomineralization, rapid vascularization, and extracellular matrix formation are major factors that accelerate bone defect healing. This strategy of highly chemically bonded soft-hard components guided the construction of the bioactive regenerative scaffold.
将仿生细胞外基质整合到 3D 打印支架的微环境中是骨替代物设计的一种新兴策略。在这里,构建了一种由通过多酚基团化学结合在聚多巴胺 (PDA) 涂层多孔梯度支架上的生物活性基质组成的“软-硬”骨植入物 (BM-g-DPCL)。PDA 涂层的“硬”支架促进钙螯合和矿物质沉积;“软”生物活性基质有利于干细胞在体外的迁移、增殖和成骨分化,加速内源性干细胞募集,并在体内引发快速血管生成。兔颅骨缺损模型 (Φ=10mm) 的结果证实,BM-g-DPCL 促进了骨组织和植入物之间的整合,并诱导了骨基质的沉积。蛋白质组学证实细胞因子黏附、生物矿化、快速血管生成和细胞外基质形成是加速骨缺损愈合的主要因素。这种高度化学结合的软-硬组件策略指导了生物活性再生支架的构建。