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3D打印聚乙二醇二丙烯酸酯(PEGDA)-壳聚糖-纳米羟基磷灰石支架:结构表征与细胞反应

3D-printed poly(ethylene) glycol diacrylate (PEGDA)-chitosan-nanohydroxyapatite scaffolds: Structural characterization and cellular response.

作者信息

Ngau Shannen Marcus, Cheah Kean How, Wong Voon Loong, Khiew Poi Sim, Lim Siew Shee

机构信息

Department of Chemical and Environmental Engineering, Faculty of Science and Engineering, University of Nottingham Malaysia, Jalan Broga, 43500 Semenyih, Selangor, Malaysia.

School of Aerospace, Faculty of Science and Engineering, University of Nottingham Ningbo China, China.

出版信息

Int J Biol Macromol. 2025 Mar;296:139652. doi: 10.1016/j.ijbiomac.2025.139652. Epub 2025 Jan 8.

Abstract

Polymer-based scaffolds with bioactive materials offer great potential in bone tissue engineering. Polyethylene glycol diacrylate (PEGDA) scaffolds fabricated via liquid crystal display 3D printing technique lack inherent osteoconductivity. To improve such properties, chitosan of 10 and 20 wt% and nanohydroxyapatite (nHA) (3-10 wt%) were incorporated into PEGDA scaffolds. nHA, synthesized via wet chemical precipitation, had a particle size of 28 nm and exhibited low crystallinity, as confirmed by X-ray diffraction. PEGDA-chitosan-nHA scaffolds underwent post-curing and 70 % ethanol leaching treatment. The presence of chitosan and nHA in the composite scaffolds was confirmed by their characteristic peaks. TGA analyses further verified nHA content correlating to the intended amount. The scaffolds featured interconnected pores ranging from 2891 to 3382 μm and porosities between 35 and 56 %. The swelling percentage and compressive modulus were reported at ~71-93 % and 0.52-1.18 MPa, respectively. Notably, PEGDA-chitosan-nHA scaffolds showed enhanced in vitro efficacy than pure PEGDA scaffolds, by promoting better MG63 cell adhesion (p < 0.05), higher proliferation and alkaline phosphatase (ALP) activity, particularly in scaffolds with 20 wt% chitosan across all incubation periods in cell proliferation and early osteoblast differentiation studies. These findings suggest that PEGDA-chitosan-nHA scaffolds have promising potential for bone tissue engineering applications.

摘要

含有生物活性材料的聚合物基支架在骨组织工程中具有巨大潜力。通过液晶显示3D打印技术制造的聚乙二醇二丙烯酸酯(PEGDA)支架缺乏固有的骨传导性。为改善这些性能,将10%和20%重量的壳聚糖以及纳米羟基磷灰石(nHA)(3 - 10%重量)掺入PEGDA支架中。通过湿化学沉淀法合成的nHA粒径为28nm,X射线衍射证实其结晶度较低。PEGDA - 壳聚糖 - nHA支架经过后固化和70%乙醇浸出处理。复合支架中壳聚糖和nHA的存在通过其特征峰得以证实。热重分析(TGA)进一步验证了nHA含量与预期含量相关。该支架具有相互连通的孔隙,孔径范围为2891至3382μm,孔隙率在35%至56%之间。报道的溶胀率和压缩模量分别约为71 - 93%和0.52 - 1.18MPa。值得注意的是,在细胞增殖和早期成骨细胞分化研究的所有培养期内,PEGDA - 壳聚糖 - nHA支架比纯PEGDA支架表现出更高的体外功效,能促进更好的MG63细胞黏附(p < 0.05)、更高的增殖和碱性磷酸酶(ALP)活性,特别是在含有20%重量壳聚糖的支架中。这些发现表明PEGDA - 壳聚糖 - nHA支架在骨组织工程应用中具有广阔的前景。

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