首页> 外文期刊>Advanced Science >3D‐Bioprinted Osteoblast‐Laden Nanocomposite Hydrogel Constructs with Induced Microenvironments Promote Cell Viability, Differentiation, and Osteogenesis both In Vitro and In Vivo
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3D‐Bioprinted Osteoblast‐Laden Nanocomposite Hydrogel Constructs with Induced Microenvironments Promote Cell Viability, Differentiation, and Osteogenesis both In Vitro and In Vivo

机译:具有诱导微环境的3D生物打印载有成骨细胞的纳米复合水凝胶构建体可促进体内和体外细胞活力,分化和成骨

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An osteoblast‐laden nanocomposite hydrogel construct, based on polyethylene glycol diacrylate (PEGDA)/laponite XLG nanoclay ([Mg 5.34 Li 0.66 Si 8 O 20 (OH) 4 ]Na 0.66, clay )/hyaluronic acid sodium salt (HA) bio‐inks, is developed by a two‐channel 3D bioprinting method. The novel biodegradable bio‐ink A, comprised of a poly(ethylene glycol) (PEG)–clay nanocomposite crosslinked hydrogel, is used to facilitate 3D‐bioprinting and enables the efficient delivery of oxygen and nutrients to growing cells. HA with encapsulated primary rat osteoblasts (ROBs) is applied as bio‐ink B with a view to improving cell viability, distribution uniformity, and deposition efficiency. The cell‐laden PEG–clay constructs not only encapsulated osteoblasts with more than 95% viability in the short term but also exhibited excellent osteogenic ability in the long term, due to the release of bioactive ions (magnesium ions, Mg 2+ and silicon ions, Si 4+ ), which induces the suitable microenvironment to promote the differentiation of the loaded exogenous ROBs, both in vitro and in vivo. This 3D‐bioprinting method holds much promise for bone tissue regeneration in terms of cell engraftment, survival, and ultimately long‐term function.
机译:基于聚乙二醇二丙烯酸酯(PEGDA)/膨润土XLG纳米粘土([Mg 5.34 Li 0.66 Si 8 O 20(OH)4] Na 0.66,粘土)/透明质酸钠盐(HA)的成骨细胞纳米复合水凝胶构造墨水是通过两通道3D生物打印方法开发的。新型的可生物降解的生物墨水A由聚(乙二醇)-粘土纳米复合交联水凝胶组成,可用于促进3D生物打印,并能将氧气和营养物质有效地传递至生长中的细胞。 HA与封装的大鼠原代成骨细胞(ROBs)一起用作生物墨水B,以改善细胞活力,分布均匀性和沉积效率。带有细胞的PEG粘土构建体不仅封装了成骨细胞,在短期内具有超过95%的生存能力,而且由于生物活性离子(镁离子,Mg 2+和硅离子)的释放,从长期来看还具有出色的成骨能力。 (Si 4+),其诱导合适的微环境以在体外和体内促进加载的外源ROB的分化。这种3D生物打印方法在细胞植入,存活以及最终的长期功能方面对骨组织再生具有广阔的前景。

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