Calcium sources can increase mechanical properties of 3D printed bioactive hybrid bone scaffolds

IF 3.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY RSC Advances Pub Date : 2024-11-27 DOI:10.1039/D3RA07946E
Agathe Heyraud, Francesca Tallia, Steven Chen, Jingwen Liu, Jishizhan Chen, Joel Turner, Gavin Jell, Peter D. Lee and Julian R. Jones
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Abstract

Inorganic/organic hybrid biomaterials have been developed to obtain synergy of the inorganic and organic co-networks for implant and 3D printed scaffold applications, providing combinations of bioactivity, toughness and controlled biodegradation. SiO2–CaOCME/PTHF/PCL-diCOOH sol–gel hybrids previously showed potential for osteogenesis due to the addition of calcium to the silicate network of the hybrid, using calcium methoxyethoxide (CME) as the calcium source. Here, we investigate other calcium sources to improve mechanical properties and printability of the hybrid inks. The aim was to produce porous scaffolds with mechanical properties similar to trabecular bone. The original Ca-free hybrid composition SiO2/PTHF/PCL-diCOOH was highly elastic and the addition of Ca increased strength while introducing bioactivity, with hydroxyapatite formation in simulated body fluid (SBF), and no negative effects on the metabolic activity of human bone marrow stromal cells (hBMSCs). However, when the hybrid was 3D printed by Direct Ink Writing, the mechanical properties were insufficient for a load sharing bone scaffold. Alternative calcium sources were investigated here, using concentrated CME (cCME), calcium hydroxide (CH), calcium ethoxide (CE), and calcium ethoxyethoxide (CEE). CEE improved the overall printability and final structure of the hybrid scaffold obtained and apatite formed on its surface in SBF. This hybrid reached the highest stress at failure (0.55 ± 0.08 MPa) and toughness modulus (0.13 ± 0.03 MPa), with a corresponding strain of >50%. With this calcium source and the optimal 70 : 30 TEOS : CEE molar ratio, scaffold properties were optimised by increasing the strut size whilst maintaining the interconnected channel size >400 μm and increasing the inorganic : organic ratio. Using a TEOS : PCL-diCOOH ratio of 85 : 15 wt%, giving a final inorganic content of 35.7 wt%, showed the optimal mechanical properties with a stress at failure of 3.1 ± 0.54 MPa for strain of 26%, and a toughness modulus of 0.58 ± 0.06 MPa, whilst keeping an open porosity >38%. Compressive strength was within the lower range of trabecular bone (2–12 MPa), and there was no observed cytotoxic effect on hBMSCs, indicating potential for use of this hybrid for bone regeneration.

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钙源可提高 3D 打印生物活性混合骨支架的机械性能
无机/有机混合生物材料的开发是为了在植入物和三维打印支架应用中获得无机和有机共网络的协同作用,提供生物活性、韧性和可控生物降解的组合。以前,SiO2-CaOCME/PTHF/PCL-diCOOH 溶胶凝胶杂化物显示出了成骨的潜力,这是因为使用甲氧基乙醇钙(CME)作为钙源,在杂化物的硅酸盐网络中添加了钙。在此,我们研究了其他钙源,以改善混合油墨的机械性能和印刷适性。我们的目标是生产出机械性能与骨小梁相似的多孔支架。最初的无钙混合成分 SiO2/PTHF/PCL-diCOOH 具有高弹性,添加钙后强度增加,同时引入了生物活性,在模拟体液(SBF)中形成羟基磷灰石,并且对人类骨髓基质细胞(hBMSCs)的代谢活性没有负面影响。然而,当采用直接油墨写入法进行三维打印时,这种混合材料的机械性能不足以用于分担负荷的骨支架。这里研究了其他钙源,包括浓缩 CME(cCME)、氢氧化钙(CH)、乙醇钙(CE)和乙氧基乙醇钙(CEE)。CEE 改善了混合支架的整体可印刷性和最终结构,并在 SBF 中在其表面形成了磷灰石。这种混合材料达到了最高的破坏应力(0.55 ± 0.08 兆帕)和韧性模量(0.13 ± 0.03 兆帕),相应的应变为 50%。使用这种钙源和最佳的 70 :30 的 TEOS :CEE摩尔比的情况下,通过增大支柱尺寸,同时保持相互连接的通道尺寸为400微米,并增大无机与有机的比例,从而优化了支架的性能。使用 TEOS :PCL-diCOOH 的比例为 85 :当应变为 26% 时,失效应力为 3.1 ± 0.54 兆帕,韧性模量为 0.58 ± 0.06 兆帕,同时保持 38% 的开放孔隙率。抗压强度在骨小梁的较低范围内(2-12 兆帕),而且没有观察到对 hBMSCs 的细胞毒性影响,这表明这种混合物具有用于骨再生的潜力。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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