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合成聚(酯氨酯)/多面体低聚倍半硅氧烷基质与胚胎干细胞增殖和分化的生物相容性。

Biocompatibility of synthetic poly(ester urethane)/polyhedral oligomeric silsesquioxane matrices with embryonic stem cell proliferation and differentiation.

机构信息

Department of Biological Sciences, University of Southern Mississippi, Hattiesburg, MS 39406, USA.

出版信息

J Tissue Eng Regen Med. 2010 Oct;4(7):553-64. doi: 10.1002/term.272.

Abstract

Incorporation of polyhedral oligomeric silsesquioxanes (POSS) into poly(ester urethanes) (PEU) as a building block results in a PEU/POSS hybrid polymer with increased mechanical strength and thermostability. An attractive feature of the new polymer is that it forms a porous matrix when cast in the form of a thin film, making it potentially useful in tissue engineering. In this study, we present detailed microscopic analysis of the PEU/POSS matrix and demonstrate its biocompatibility with cell culture. The PEU/POSS polymer forms a continuous porous matrix with open pores and interconnected grooves. From SEM image analysis, it is calculated that there are about 950 pores/mm(2) of the matrix area with pore diameter size in the range 1-15 µm. The area occupied by the pores represents approximately 7.6% of the matrix area. Using mouse embryonic stem cells (ESCs), we demonstrate that the PEU/POSS matrix provides excellent support for cell proliferation and differentiation. Under the cell culture condition optimized to maintain self-renewal, ESCs grown on a PEU/POSS matrix exhibit undifferentiated morphology, express pluripotency markers and have a similar growth rate to cells grown on gelatin. When induced for differentiation, ESCs underwent dramatic morphological change, characterized by the loss of clonogenecity and increased cell size, with well-expanded cytoskeleton networks. Differentiated cells are able to form a continuous monolayer that is closely embedded in the matrix. The excellent compatibility between the PEU/POSS matrix and ESC proliferation/differentiation demonstrates the potential of using PEU/POSS polymers in future ESC-based tissue engineering.

摘要

多面体低聚倍半硅氧烷(POSS)的掺入到聚(酯氨酯)(PEU)中作为构建块,得到具有增加的机械强度和热稳定性的 PEU/POSS 杂化聚合物。这种新型聚合物的一个吸引人的特点是,当以薄膜的形式浇铸时,它形成多孔基质,使其在组织工程中具有潜在的用途。在这项研究中,我们对 PEU/POSS 基质进行了详细的微观分析,并证明了其与细胞培养的生物相容性。PEU/POSS 聚合物形成具有开放孔和互连槽的连续多孔基质。从 SEM 图像分析中计算出,基质区域的约 950 个孔/mm2 的具有 1-15μm 范围内的孔径的孔,并且由孔占据的区域代表基质区域的约 7.6%。使用小鼠胚胎干细胞(ESCs),我们证明了 PEU/POSS 基质为细胞增殖和分化提供了极好的支持。在优化以维持自我更新的细胞培养条件下,在 PEU/POSS 基质上生长的 ESCs 表现出未分化的形态,表达多能性标志物并且具有与在明胶上生长的细胞相似的生长速率。当诱导分化时,ESCs经历了显著的形态变化,其特征在于克隆形成能力的丧失和细胞大小的增加,同时具有良好扩展的细胞骨架网络。分化的细胞能够形成紧密嵌入基质中的连续单层。PEU/POSS 基质与 ESC 增殖/分化之间的优异相容性表明了在未来的 ESC 为基础的组织工程中使用 PEU/POSS 聚合物的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6984/2946510/d171b3140b9d/nihms220074f1.jpg

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