脊柱融合术
骨水泥
脚手架
水泥
骨形态发生蛋白
骨整合
生物材料
生物医学工程
生物活性玻璃
材料科学
化学
医学
植入
外科
复合材料
生物化学
基因
作者
Xifeng Liu,Maria Astudillo Potes,Vitalii Serdiuk,Babak Dashtdar,Areonna Schreiber,Asghar Rezaei,A. Lee Miller,Abdelrahman M. Hamouda,Mahnoor Shafi,Benjamin D. Elder,Lichun Lu
标识
DOI:10.1021/acsabm.4c00073
摘要
Spinal injuries or diseases necessitate effective fusion solutions, and common clinical approaches involve autografts, allografts, and various bone matrix products, each with limitations. To address these challenges, we developed an innovative moldable click chemistry polymer cement that can be shaped by hand and self-cross-linked in situ for spinal fusion. This self-cross-linking cement, enabled by the bioorthogonal click reaction, excludes the need for toxic initiators or external energy sources. The bioactivity of the cement was promoted by incorporating nanohydroxyapatite and microspheres loaded with recombinant human bone morphogenetic protein-2 and vascular endothelial growth factor, fostering vascular induction and osteointegration. The release kinetics of growth factors, mechanical properties of the cement, and the ability of the scaffold to support in vitro cell proliferation and differentiation were evaluated. In a rabbit posterolateral spinal fusion model, the moldable cement exhibited remarkable induction of bone regeneration and effective bridging of spine vertebral bodies. This bioactive moldable click polymer cement therefore presents a promising biomaterial for spinal fusion augmentation, offering advantages in safety, ease of application, and enhanced bone regrowth.
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