Department of Biomaterials, Institute of Clinical Dentistry, University of Oslo, 0317 Oslo, Norway.
Faculty of Pharmaceutical Sciences, School of Health Sciences, University of Iceland, Hofsvallagata 53, IS-107 Reykjavík, Iceland.
Carbohydr Polym. 2021 Feb 15;254:117434. doi: 10.1016/j.carbpol.2020.117434. Epub 2020 Nov 22.
We have studied the effect of chitosan sponges, produced from chitosan batches with distinct degree of deacetylation (DDA) and molecular weight (Mw), on the adhesion, growth and differentiation of primary human osteoblasts with an aim to offer a suitable tool for guided bone regeneration. All the chitosan sponges revealed similar microstructure, irrespective of the DDA (58, 73, 82, 88, and 91 %) and Mw (749, 547, 263, 215, and 170 kDa, respectively). Cell spreading was higher on sponges having a higher DDA. Higher DDA induced a more pronounced increase in alkaline phosphatase activity, osteopontin (OPN), vascular endothelial growth factor-A (VEGF), interleukin-6 (IL-6), and reduction in monocyte chemoattractant protein-1 (MCP-1), sclerostin (SOST) and dickkopf related protein-1 as compared to lower DDA. Lower DDA induced the increased secretion of osteoprotegerin and SOST as compared to higher DDA. The combination of higher DDA and Mw induced an increased secretion of VEGF and IL-6, however reduced the secretion of OPN as compared to chitosan with similar DDA but with lower Mw. In summary, the variations in cellular responses to the different chitosan sponges indicate a potential for individual tailoring of desired responses in guided bone regeneration.
我们研究了壳聚糖海绵对原代人成骨细胞黏附、生长和分化的影响,这些壳聚糖海绵是用具有不同脱乙酰度(DDA)和分子量(Mw)的壳聚糖制成的,目的是提供一种合适的工具用于引导骨再生。所有壳聚糖海绵的微观结构都相似,与 DDA(58、73、82、88 和 91%)和 Mw(749、547、263、215 和 170 kDa)无关。细胞在具有更高 DDA 的海绵上的铺展更高。更高的 DDA 诱导碱性磷酸酶活性、骨桥蛋白(OPN)、血管内皮生长因子-A(VEGF)、白细胞介素-6(IL-6)的增加更为明显,单核细胞趋化蛋白-1(MCP-1)、硬化蛋白(SOST)和 Dickkopf 相关蛋白-1 的减少与较低的 DDA 相比。与较高的 DDA 相比,较低的 DDA 诱导了骨保护素和 SOST 的分泌增加。较高的 DDA 和 Mw 的组合诱导了 VEGF 和 IL-6 的分泌增加,然而与具有相似 DDA 但较低 Mw 的壳聚糖相比,OPN 的分泌减少。总之,不同壳聚糖海绵对细胞反应的变化表明,在引导骨再生中,有可能对所需反应进行个性化调整。