多能成体祖细胞在颅骨再生中的成骨潜能。

Advances in Medicine Pub Date : 2016-01-01 Epub Date: 2016-04-28 DOI:10.1155/2016/2803081
Dong Joon Lee, Yonsil Park, Wei-Shou Hu, Ching-Chang Ko
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引用次数: 2

摘要

研究了从大鼠多能成骨祖细胞(rMAPCs)中提取的成骨细胞在骨再生中的潜在应用。rMAPCs是来源于骨髓的成体干细胞,具有高增殖能力和向多谱系分化的潜力。它们也可能提供有利于再生医学应用的免疫调节特性。将rMAPCs作为单细胞或3D聚集体在成骨培养基中培养38天,然后通过骨钙素和I型胶原蛋白的免疫染色以及矿化试验来评估它们向骨谱系的分化。通过将多能成体祖细胞(MAPC)聚集体直接植入大鼠颅骨缺损,在体内评估了MAPC促进骨再生的能力。骨再生进行了影像学、组织学和组织形态学检查。结果表明,rMAPC在体外通过矿化细胞外基质形成成功分化为成骨谱系,在体内通过rMAPC聚集体的作用诱导新骨形成。这些结果证实了rMAPCs具有良好的成骨潜能,并为rMAPCs作为骨再生的新型成体干细胞来源提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Osteogenic Potential of Multipotent Adult Progenitor Cells for Calvaria Bone Regeneration.

Osteogenic Potential of Multipotent Adult Progenitor Cells for Calvaria Bone Regeneration.

Osteogenic Potential of Multipotent Adult Progenitor Cells for Calvaria Bone Regeneration.

Osteogenic Potential of Multipotent Adult Progenitor Cells for Calvaria Bone Regeneration.

Osteogenic cells derived from rat multipotent adult progenitor cells (rMAPCs) were investigated for their potential use in bone regeneration. rMAPCs are adult stem cells derived from bone marrow that have a high proliferation capacity and the differentiation potential to multiple lineages. They may also offer immunomodulatory properties favorable for applications for regenerative medicine. rMAPCs were cultivated as single cells or as 3D aggregates in osteogenic media for up to 38 days, and their differentiation to bone lineage was then assessed by immunostaining of osteocalcin and collagen type I and by mineralization assays. The capability of rMAPCs in facilitating bone regeneration was evaluated in vivo by the direct implantation of multipotent adult progenitor cell (MAPC) aggregates in rat calvarial defects. Bone regeneration was examined radiographically, histologically, and histomorphometrically. Results showed that rMAPCs successfully differentiated into osteogenic lineage by demonstrating mineralized extracellular matrix formation in vitro and induced new bone formation by the effect of rMAPC aggregates in vivo. These outcomes confirm that rMAPCs have a good osteogenic potential and provide insights into rMAPCs as a novel adult stem cell source for bone regeneration.

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