3D-printed injectable nanocomposite cryogel scaffolds for bone tissue regeneration

IF 8.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Edgar J. Castanheira , João R. Maia , Luís P.G. Monteiro , Rita Sobreiro-Almeida , Nina K. Wittig , Henrik Birkedal , João M.M. Rodrigues , João F. Mano
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Abstract

Cryogels are known for their high water content and interconnected macroporosity, two relevant features in tissue engineering approaches. The cryogel structure can support tissue growth as it allows nutrient and oxygen diffusion, removal of waste products, as well as an enhancement of cell infiltration and proliferation. Bioactive glass nanoparticles are biocompatible and clinically approved bioactive materials widely used as implants in the human body to repair or replace diseased or damaged bones. They are known to facilitate bone binding while stimulating bone growth. Indeed, the combination of cryogels with bioactive nanoparticles has already demonstrated promising results for bone regeneration. Although the developed biomaterials succeed in bone regeneration, they lack suitability for minimal invasive procedures or patient-specificity. Here, we demonstrate a freeform 3D printed nanocomposite cryogel, resorting to an ink composed of functionalized gelatin and bioactive glass nanoparticles with methacrylate groups. Complex structures with multiple layers were 3D printed in a xanthan gum supporting bath. The developed 3D printed nanocomposite cryogels demonstrate the ability to recover their shape without any permanent damage, withstanding up to 65 % compression upon injection. Additionally, they stimulate the differentiation of human adipose-derived stem cells into the osteoblast lineage, therefore promoting bone tissue growth. We further demonstrated their suitability for minimal invasive therapeutics by filling a reproduction of a maxillofacial defect. The developed 3D-printed nanocomposite cryogels offer robust shape-recovery properties, easy injectability, tailored geometry into patient-specific injuries, and high osteogenic bioactivity, showcasing its versatility for bone regeneration purposes.
用于骨组织再生的三维打印可注射纳米复合低温凝胶支架
低温凝胶因其高含水量和相互连接的大孔隙率而闻名,这是组织工程方法的两个相关特征。低温凝胶结构可以支持组织生长,因为它允许养分和氧气扩散、清除废物以及促进细胞浸润和增殖。生物活性玻璃纳米粒子是一种生物相容性好、经临床认可的生物活性材料,被广泛用作人体植入物,以修复或替代病变或受损的骨骼。众所周知,它们能促进骨结合,同时刺激骨生长。事实上,低温凝胶与生物活性纳米粒子的结合已经在骨再生方面取得了可喜的成果。虽然已开发的生物材料在骨再生方面取得了成功,但它们缺乏微创手术的适用性或患者特异性。在这里,我们展示了一种自由形态三维打印纳米复合低温凝胶,它采用了一种由功能化明胶和带有甲基丙烯酸酯基团的生物活性玻璃纳米颗粒组成的墨水。复杂的多层结构是在黄原胶支撑浴中三维打印出来的。所开发的三维打印纳米复合低温凝胶显示出了恢复形状的能力,不会造成任何永久性损伤,注射后可承受高达 65% 的压缩。此外,它们还能刺激人体脂肪干细胞向成骨细胞系分化,从而促进骨组织生长。我们通过填充颌面部缺损的复制品,进一步证明了它们适用于微创治疗。所开发的三维打印纳米复合低温凝胶具有坚固的形状恢复特性、易于注射、可根据患者的具体损伤情况定制几何形状以及高致骨生物活性,展示了其在骨再生方面的多功能性。
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来源期刊
CiteScore
11.30
自引率
3.90%
发文量
130
审稿时长
31 days
期刊介绍: Materials Today Nano is a multidisciplinary journal dedicated to nanoscience and nanotechnology. The journal aims to showcase the latest advances in nanoscience and provide a platform for discussing new concepts and applications. With rigorous peer review, rapid decisions, and high visibility, Materials Today Nano offers authors the opportunity to publish comprehensive articles, short communications, and reviews on a wide range of topics in nanoscience. The editors welcome comprehensive articles, short communications and reviews on topics including but not limited to: Nanoscale synthesis and assembly Nanoscale characterization Nanoscale fabrication Nanoelectronics and molecular electronics Nanomedicine Nanomechanics Nanosensors Nanophotonics Nanocomposites
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