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人无限制体干细胞和成骨分化的比较与骨髓和脂肪组织间充质干细胞。

A comparison between osteogenic differentiation of human unrestricted somatic stem cells and mesenchymal stem cells from bone marrow and adipose tissue.

机构信息

Stem Cell Biology Department, Stem Cell Technology Research Center, Tehran, Iran.

出版信息

Biotechnol Lett. 2011 Jun;33(6):1257-64. doi: 10.1007/s10529-011-0541-8. Epub 2011 Feb 2.

Abstract

To evaluate the potential of three stem cells for cell therapy and tissue engineering applications, the biological behavior and osteogenic capacity of the newly introduced cord-blood-derived, unrestricted somatic stem cells (USSC) were compared with those of mesenchymal stem cells isolated from bone marrow (BM-MSC) and adipose tissue (AT-MSC). There was no significant difference between the rates of proliferation of the three stem cells. During osteogenic differentiation, alkaline phosphatase (ALP) activity peaked on day 7 in USSC compared to BM-MSC which showed the maximum value of ALP activity on day 14. However, BM-MSC had the highest ALP activity and mineralization during osteogenic induction. In addition, AT-MSC showed the lowest capacity for mineralization during differentiation and had the lowest ALP activity on days 7 and 14. Although AT-MSC expressed higher levels of collagen type I, osteonectin and BMP-2 in undifferentiated state, but these genes were expressed higher in BM-MSC during differentiation. BM-MSC also expressed higher levels of ALP, osteocalcin and Runx2 during induction. Taking together, BM-MSC showed the highest capacity for osteogenic differentiation and hold promising potential for bone tissue engineering and cell therapy applications.

摘要

为了评估三种干细胞在细胞治疗和组织工程应用中的潜力,比较了新引入的无限制体干细胞(USSC)与骨髓间充质干细胞(BM-MSC)和脂肪组织间充质干细胞(AT-MSC)的生物学行为和成骨能力。这三种干细胞的增殖率没有显著差异。在成骨分化过程中,碱性磷酸酶(ALP)活性在 USSC 中于第 7 天达到峰值,而 BM-MSC 的 ALP 活性最大值出现在第 14 天。然而,BM-MSC 在成骨诱导过程中具有最高的 ALP 活性和矿化能力。此外,在分化过程中,AT-MSC 的矿化能力最低,第 7 天和第 14 天的 ALP 活性最低。虽然 AT-MSC 在未分化状态下表达更高水平的 I 型胶原、骨粘连蛋白和 BMP-2,但这些基因在分化过程中在 BM-MSC 中表达更高。BM-MSC 在诱导过程中也表达更高水平的 ALP、骨钙素和 Runx2。总的来说,BM-MSC 显示出最高的成骨分化能力,为骨组织工程和细胞治疗应用提供了有前景的潜力。

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