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首页> 外文期刊>Tissue engineering, Part A >Biofunctionalized calcium phosphate cement to enhance the attachment and osteodifferentiation of stem cells released from fast-degradable alginate-fibrin microbeads
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Biofunctionalized calcium phosphate cement to enhance the attachment and osteodifferentiation of stem cells released from fast-degradable alginate-fibrin microbeads

机译:生物功能化的磷酸钙水泥可增强从可快速降解的藻酸盐-血纤蛋白微珠释放的干细胞的附着和骨分化

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摘要

Stem cell-encapsulating microbeads could be mixed into a paste such as calcium phosphate cement (CPC), where the microbeads could protect the cells from the mixing and injection forces. After being placed, the microbeads could quickly degrade to release the cells throughout the scaffold, while creating macropores. The objectives of this study were to (1) construct alginate-fibrin microbeads encapsulating human umbilical cord mesenchymal stem cells (hUCMSCs) embedded in the surface of novel biofunctionalized CPC and (2) investigate microbead degradation, cell release, and osteodifferentiation on CPC. Hydrogel microbeads were fabricated that encapsulated hUCMSCs at 1×10 6 cells/mL. CPC was biofunctionalized with fibronectin (Fn) and Arg-Gly-Asp (RGD). Four scaffolds were tested: CPC control, CPC mixed with Fn, CPC mixed with RGD, and CPC grafted with RGD. The degradable microbeads released hUCMSCs at 7 days, which attached to CPC. Adding Fn or RGD to CPC greatly improved cell attachment. CPC grafted with RGD showed the fastest cell proliferation, with cell density being ninefold that on CPC control. The released hUCMSCs underwent osteodifferentiation. Alkaline phosphatase, osteocalcin, collagen 1, and runt-related transcription factor 2 (Runx2) gene expression increased by 10 to 30 fold at 7-21 days, compared with day 1. The released cells on CPC synthesized bone minerals, with the mineralization amount at 21 days being two orders of magnitude higher than that at 7 days. In conclusion, alginate-fibrin microbeads embedded in CPC surface were able to quickly release the hUCMSCs that attached to biofunctionalized CPC. Incorporating Fn and RGD into CPC greatly improved cell function, and CPC grafted with RGD had the fastest cell proliferation. The released cells on CPC differentiated into the osteogenic lineage and synthesized bone minerals. The new biofunctionalized CPC with hUCMSC-encapsulating microbeads is promising for bone regeneration applications.
机译:可以将包封有干细胞的微珠混合成糊剂,例如磷酸钙水泥(CPC),其中微珠可以保护细胞免受混合和注入力的影响。放置后,微珠可迅速降解以释放整个支架中的细胞,同时产生大孔。这项研究的目的是(1)构建藻酸盐-纤维蛋白微珠,将人脐带间充质干细胞(hUCMSCs)封装在新型生物功能化CPC的表面,以及(2)研究CPC上的微珠降解,细胞释放和骨分化。制备了以1×10 6细胞/ mL封装hUCMSC的水凝胶微珠。 CPC用纤连蛋白(Fn)和Arg-Gly-Asp(RGD)生物功能化。测试了四个支架:CPC对照,CPC与Fn混合,CPC与RGD混合以及CPC与RGD嫁接。可降解的微珠在第7天释放了hUCMSC,并附着在CPC上。在CPC中添加Fn或RGD可大大改善细胞附着。用RGD嫁接的CPC表现出最快的细胞增殖,细胞密度是CPC对照的9倍。释放的hUCMSC经历了骨分化。与第1天相比,碱性磷酸酶,骨钙素,胶原1和矮子相关转录因子2(Runx2)基因的表达在7-21天时增加了10到30倍。CPC上释放的细胞合成了骨矿物质,具有矿化量21天比7天高两个数量级。总之,嵌入CPC表面的藻酸盐-纤维蛋白微珠能够快速释放附着到生物功能化CPC的hUCMSC。将Fn和RGD掺入CPC可以大大改善细胞功能,嫁接RGD的CPC具有最快的细胞增殖能力。 CPC上释放的细胞分化为成骨谱系和合成的骨矿物质。具有hUCMSC封装微珠的新型生物功能化CPC有望用于骨再生应用。

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