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3D-printed scaffolds of biomineralized hydroxyapatite nanocomposite on silk fibroin for improving bone regeneration

机译:丝素蛋白上生物矿化的羟基磷灰石纳米复合材料的3D打印支架可改善骨骼再生

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In an attempt to fabricate biomimetic bone repair scaffolds and improve bone regeneration point of view, we have three dimensionally printed porous scaffolds with biomineralized hydroxyapatite/silk fibroin nano-composites. SF/HA composite particles were firstly produced via an in-situ mineral precipitation process when SF molecules were served as templates.. Microscopy observations of SF/HA showed homogeneous morphology and narrowly distributed size. By using sodium alginate (SA) as paste binder, scaffolds with different contents of SF/HA were subsequently 3D-printed under proper conditions. All the scaffolds were porous with 3D interconnected large pores (size similar to 400 mu m) and an overall porosity about 70%, combined with a relative high compressive strength ( 6 MPa). The in vitro biological properties of degradation, apatite formation, human bone marrow-derived mesenchymal stem cells (hBMSCs) proliferation and differentiation were characterized on SF/HA-SA scaffolds. Results indicated that more apatite newly formed on the scaffold surface after soaking in SBF and original deposited HA minerals would recrystallize. In addition, the pH values of medium microenvironment remained steady in the range from 6.9 to 7.1 in one month. Cell attachment and penetration into scaffolds were supported by all the groups. Increased content of SF/HA led to better cell proliferation, and enhanced ALP activity as well. Bovine serum albumin (BSA) protein was selected as a model drug to be loaded into SF/HA-SA scaffolds in printing process, and the drugs released in a relative sustained manner in 5 days. These results suggest a promising application of SF/HA-SA scaffolds in bone regeneration.
机译:为了制造仿生的骨修复支架并改善骨再生的观点,我们有三种尺寸印刷的带有生物矿化的羟基磷灰石/丝素蛋白纳米复合材料的多孔支架。 SF / HA复合颗粒是在以SF分子为模板时通过原位矿物沉淀法制备的。SF / HA的显微镜观察显示其形态均匀,粒径分布狭窄。通过使用海藻酸钠(SA)作为糊状粘合剂,随后在适当的条件下3D打印具有不同SF / HA含量的支架。所有的支架都是多孔的,具有3D互连的大孔(尺寸类似于400微米),总孔隙率约为70%,同时具有相对较高的抗压强度(> 6 MPa)。在SF / HA-SA支架上表征了降解,磷灰石形成,人骨髓间充质干细胞(hBMSCs)增殖和分化的体外生物学特性。结果表明,浸泡在SBF中的支架表面上会新形成更多的磷灰石,原始沉积的HA矿物会重结晶。此外,中等微环境的pH值在一个月内稳定在6.9至7.1的范围内。所有组均支持细胞附着和渗透进入支架。 SF / HA含量的增加导致更好的细胞增殖,以及增强的ALP活性。选择牛血清白蛋白(BSA)作为模型药物,在印刷过程中加载到SF / HA-SA支架中,并在5天内以相对持续的方式释放。这些结果表明SF / HA-SA支架在骨再生中有希望的应用。

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