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胶原-磷酸钙水泥支架复合脐带干细胞构建组织工程骨

Collagen-calcium phosphate cement scaffolds seeded with umbilical cord stem cells for bone tissue engineering.

机构信息

Biomaterials and Tissue Engineering Division, Department of Endodontics, Prosthodontics and Operative Dentistry, University of Maryland Dental School, Baltimore, MD 21201, USA.

出版信息

Tissue Eng Part A. 2011 Dec;17(23-24):2943-54. doi: 10.1089/ten.tea.2010.0674. Epub 2011 Aug 18.

Abstract

Human umbilical cord mesenchymal stem cells (hUCMSCs) avoid the invasive procedure required to harvest bone marrow MSCs. The addition of collagen fibers into self-setting calcium phosphate cement (CPC) may increase the scaffold strength, and enhance cell attachment and differentiation. The objectives of this study were to develop a novel class of collagen-CPC composite scaffolds, and to investigate hUCMSC attachment, proliferation, and osteogenic differentiation on collagen-CPC scaffolds for the first time. Collagen fibers in CPC improved the load-bearing capability. Flow cytometry showed that the hUCMSCs expressed cell surface markers characteristic of MSCs, and were negative for hematopoietic and endothelial cell markers. hUCMSCs proliferated rapidly in all CPC composite scaffolds, with cell number increasing by sevenfold in 8 days. Cellular function was enhanced with collagen fibers in CPC scaffolds. Cell density increased from (645±60) cells/mm(2) on CPC with 0% collagen, to (1056±65) cells/mm(2) on CPC with 8% collagen (p<0.05). The actin stress fibers inside the hUCMSCs were stained, and the fluorescence intensity was doubled when the collagen in CPC was increased by 0% to 8%. RT-PCR showed that hUCMSCs on CPC with collagen had higher osteogenic expression than those on CPC without collagen. Alizarin Red S staining revealed a great increase in mineralization by hUCMSCs on CPC with collagen than that without collagen. In conclusion, hUCMSCs showed excellent proliferation, differentiation, and synthesis of bone minerals in collagen-CPC composite scaffolds for the first time. The novel hUCMSC-seeded collagen-CPC construct with superior cell function and load-bearing capability is promising to enhance bone regeneration in a wide range of orthopedic and craniofacial applications.

摘要

人脐带间充质干细胞(hUCMSCs)避免了采集骨髓间充质干细胞所需的侵入性程序。将胶原纤维添加到自固化磷酸钙骨水泥(CPC)中可能会增加支架的强度,并增强细胞附着和分化。本研究的目的是开发一种新型的胶原-CPC 复合支架,并首次研究 hUCMSC 在胶原-CPC 支架上的附着、增殖和成骨分化。CPC 中的胶原纤维提高了承载能力。流式细胞术显示 hUCMSCs 表达了间充质干细胞的特征表面标志物,并且对造血和内皮细胞标志物呈阴性。hUCMSCs 在所有 CPC 复合支架中均快速增殖,8 天内细胞数量增加了七倍。CPC 支架中的胶原纤维增强了细胞功能。细胞密度从无胶原的 CPC 中的(645±60)个细胞/mm(2)增加到含 8%胶原的 CPC 中的(1056±65)个细胞/mm(2)(p<0.05)。hUCMSCs 内的肌动蛋白应力纤维被染色,当 CPC 中的胶原从 0%增加到 8%时,荧光强度增加了一倍。RT-PCR 显示,与无胶原的 CPC 相比,含胶原的 CPC 上的 hUCMSCs 的成骨表达更高。茜素红 S 染色显示,含胶原的 CPC 上的 hUCMSCs 的矿化程度大大增加,而无胶原的 CPC 则没有。总之,hUCMSCs 在胶原-CPC 复合支架中表现出优异的增殖、分化和骨矿物质合成能力,这是首次报道。具有优异细胞功能和承载能力的新型 hUCMSC 接种胶原-CPC 构建体有望在广泛的骨科和颅面应用中增强骨再生。

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Stem cell-calcium phosphate constructs for bone engineering.干细胞-磷酸钙构建体用于骨工程。
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