3D-printed biodegradable composite poly(lactic acid)-based scaffolds with a shape memory effect for bone tissue engineering

IF 23.2 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Abdullah bin Firoz, Vladimir Rybakov, Anastasia A. Fetisova, Lada E. Shlapakova, Igor O. Pariy, Nikita Toropkov, Alexander S. Lozhkomoev, Yulia R. Mukhortova, Anna A. Sharonova, Dmitry V. Wagner, Maria A. Surmeneva, Andrei L. Kholkin, Roman A. Surmenev
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Abstract

In this study, 3D-printed biodegradable poly(lactic acid) (PLA) and hybrid PLA scaffolds doped with magnetite nanoparticles (PLA/Fe3O4) and having gyroid structure were investigated at various infill densities (100%, 70%, 50%, or 30%). Effects of infill density on the composition, structure, and mechanical properties (Young’s modulus, compression, and tensile strength) of the scaffolds and a shape memory effect were documented. Raman spectroscopy was used to detect the characteristic molecular bonds of PLA and magnetite. X-ray diffraction confirmed higher crystallinity of the materials printed with Fe3O4 addition. PLA/Fe3O4 composites showed ferrimagnetic behavior. Mechanical properties of PLA/Fe3O4 composite scaffolds with 50% porosity fall within the range of corresponding mechanical properties of native cancellous bone, and therefore these scaffolds hold promise for the repair of bone defects. Additionally, 3D-printed materials’ various sizes and shapes were tested to achieve shape recovery up to 85% for composite porous scaffolds with gyroid structure and up to 100% for nonporous pure PLA ribbons (the supporting walls). Furthermore, a decrease in the infill density of the gyroid scaffolds resulted in a higher shape recovery rate. A proposed mechanism of the shape memory effect in the printed scaffolds was also discussed. These findings suggest that the developed 3D-printed PLA/Fe3O4 scaffolds, with tunable mechanical properties and shape memory capabilities, offer significant potential for advanced biomedical applications, including personalized bone repair and regeneration.

3d打印具有形状记忆效应的可生物降解聚乳酸复合材料骨组织工程支架
在本研究中,研究了在不同填充密度(100%,70%,50%,30%)下,3d打印掺杂磁性纳米颗粒(PLA/Fe3O4)并具有旋转结构的可生物降解聚乳酸(PLA)和杂化PLA支架。填充密度对支架的组成、结构和力学性能(杨氏模量、压缩和拉伸强度)的影响以及形状记忆效应被记录下来。利用拉曼光谱技术对聚乳酸和磁铁矿的分子键特征进行了检测。x射线衍射证实了添加Fe3O4后印刷材料的结晶度较高。PLA/Fe3O4复合材料表现出铁磁行为。50%孔隙率的PLA/Fe3O4复合支架的力学性能在天然松质骨的相应力学性能范围内,有望用于骨缺损的修复。此外,对各种尺寸和形状的3d打印材料进行了测试,具有陀螺结构的复合多孔支架的形状恢复率高达85%,无孔纯PLA带(支撑壁)的形状恢复率高达100%。此外,减少旋转支架的填充密度导致更高的形状恢复率。讨论了打印支架中形状记忆效应的机理。这些发现表明,开发的3d打印PLA/Fe3O4支架具有可调的机械性能和形状记忆能力,为先进的生物医学应用提供了巨大的潜力,包括个性化骨修复和再生。
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来源期刊
CiteScore
26.00
自引率
21.40%
发文量
185
期刊介绍: Advanced Composites and Hybrid Materials is a leading international journal that promotes interdisciplinary collaboration among materials scientists, engineers, chemists, biologists, and physicists working on composites, including nanocomposites. Our aim is to facilitate rapid scientific communication in this field. The journal publishes high-quality research on various aspects of composite materials, including materials design, surface and interface science/engineering, manufacturing, structure control, property design, device fabrication, and other applications. We also welcome simulation and modeling studies that are relevant to composites. Additionally, papers focusing on the relationship between fillers and the matrix are of particular interest. Our scope includes polymer, metal, and ceramic matrices, with a special emphasis on reviews and meta-analyses related to materials selection. We cover a wide range of topics, including transport properties, strategies for controlling interfaces and composition distribution, bottom-up assembly of nanocomposites, highly porous and high-density composites, electronic structure design, materials synergisms, and thermoelectric materials. Advanced Composites and Hybrid Materials follows a rigorous single-blind peer-review process to ensure the quality and integrity of the published work.
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