首页> 外文期刊>Journal of tissue engineering and regenerative medicine >Non-rigid calcium phosphate cement containing hydrogel microbeads and absorbable fibres seeded with umbilical cord stem cells for bone engineering.
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Non-rigid calcium phosphate cement containing hydrogel microbeads and absorbable fibres seeded with umbilical cord stem cells for bone engineering.

机译:含有水凝胶微珠的非刚性磷酸钙水泥和用脐带干细胞播种的可吸收纤维进行骨骼工程。

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The need for bone repair has increased as the population ages. Non-rigid calcium phosphate scaffolds could provide compliance for micro-motions within the tissues and yet have load-supporting strength. The objectives of this study were to: (a) develop a non-rigid calcium phosphate cement (CPC) with microbeads and fibre reinforcement; and (b) investigate human umbilical cord mesenchymal stem cell (hUCMSC) proliferation, osteodifferentiation and mineralization on non-rigid CPC for the first time. Non-rigid CPC was fabricated by adding extra tetracalcium phosphate in the traditional CPC and by incorporating chitosan, absorbable fibres and hydrogel microbeads. The non-rigid CPC-microbead scaffold possessed a strain-at-failure of 10.7%, much higher than the traditional CPC's strain of 0.05% which is typical for brittle bioceramics. Flexural strength of non-rigid CPC-microbead was 4-fold that of rigid CPC-microbead scaffold, while work-of-fracture (toughness) was increased by 20-fold. The strength of non-rigid CPC-microbead-fibre scaffold matched that of cancellous bone. hUCMSCs on non-rigid CPC proliferated from 100 cells/mm(2) at 1?day to 600 cells/mm(2) at 8?days. Alkaline phosphatase, osteocalcin and collagen gene expressions of hUCMSCs were greatly increased, and the cells synthesized bone minerals. hUCMSCs on non-rigid CPC-microbead-fibre constructs had higher bone markers and more mineralization than those on rigid CPC controls. In conclusion, this study developed the first non-rigid, in situ-setting calcium phosphate-microbead-fibre scaffold with a strain-at-failure exceeding 10%. hUCMSCs showed excellent proliferation, osteodifferentiation and mineralization on non-rigid CPC scaffold. The novel non-rigid CPC-hUCMSC construct with good strength, high strain-at-failure and toughness, as well as superior stem cell proliferation, osteodifferentiation and mineralization, is promising for load-bearing bone regeneration applications. Copyright ? 2012 John Wiley & Sons, Ltd.
机译:随着人口年龄的增长,对骨修复的需求增加。非刚性磷酸钙支架可以提供组织内的微运动的顺应性,但具有负载支撑强度。本研究的目的是:(a)用微珠和纤维增强,开发非刚性磷酸钙水泥(CPC); (b)首次调查人脐部间充质干细胞(HUCMSC)的非刚性CPC上的骨质细胞增殖,骨质细胞化和矿化。通过在传统的CPC中添加额外的磷酸钙,并通过掺入壳聚糖,可吸收纤维和水凝胶微珠来制造非刚性CPC。非刚性CPC-Microbead支架具有10.7%的菌株,远高于传统的CPC菌株0.05%,这对于脆性生物陶瓷典型。非刚性CPC-Microbead的弯曲强度为刚性CPC-Microbead支架的4倍,而裂缝的工作(韧性)增加20倍。非刚性CPC-Microbead-纤维支架的强度与松质骨的强度匹配。在8?日至600个细胞/ mm(2)的100个细胞/ mm(2)中加入的非刚性CPC上的HUCMSCS在8?天。 Hucmscs的碱性磷酸酶,骨钙蛋白和胶原基因表达大大增加,细胞合成骨矿物。非刚性CPC-Microbead-纤维构建体上的Hucmscs具有比刚性CPC控制更高的骨标记和更高的矿化。总之,本研究开发了第一个非刚性,原位设定磷酸钙 - 微珠纤维支架,其菌株发生率超过10%。 HUCMSCS在非刚性CPC支架上显示出优异的增殖,骨质细胞化和矿化。具有良好的强度,高菌株 - 发生故障和韧性的新型非刚性CPC-HUCMSC构建体,以及优异的干细胞增殖,骨液细胞化和矿化,是承诺承载骨再生应用。版权? 2012年John Wiley&Sons,Ltd。

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