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韧带来源的基质可刺激人脂肪来源干细胞的韧带样表型。

Ligament-derived matrix stimulates a ligamentous phenotype in human adipose-derived stem cells.

机构信息

Division of Orthopaedic Surgery, Department of Surgery, Duke University Medical Center, Durham, North Carolina 27710, USA.

出版信息

Tissue Eng Part A. 2010 Jul;16(7):2307-19. doi: 10.1089/ten.tea.2009.0720.

Abstract

Human adipose stem cells (hASCs) can differentiate into a variety of phenotypes. Native extracellular matrix (e.g., demineralized bone matrix or small intestinal submucosa) can influence the growth and differentiation of stem cells. The hypothesis of this study was that a novel ligament-derived matrix (LDM) would enhance expression of a ligamentous phenotype in hASCs compared to collagen gel alone. LDM prepared using phosphate-buffered saline or 0.1% peracetic acid was mixed with collagen gel (COL) and was evaluated for its ability to induce proliferation, differentiation, and extracellular matrix synthesis in hASCs over 28 days in culture at different seeding densities (0, 0.25 x 10(6), 1 x 10(6), or 2 x 10(6) hASC/mL). Biochemical and gene expression data were analyzed using analysis of variance. Fisher's least significant difference test was used to determine differences between treatments following analysis of variance. hASCs in either LDM or COL demonstrated changes in gene expression consistent with ligament development. hASCs cultured with LDM demonstrated more dsDNA content, sulfated-glycosaminoglycan accumulation, and type I and III collagen synthesis, and released more sulfated-glycosaminoglycan and collagen into the medium compared to hASCs in COL (p <or= 0.05). Increased seeding density increased DNA content incrementally over 28 days in culture for LDM but not COL constructs (p <or= 0.05). These findings suggest that LDM can stimulate a ligament phenotype by hASCs, and may provide a novel scaffold material for ligament engineering applications.

摘要

人脂肪干细胞(hASCs)可分化为多种表型。天然细胞外基质(如脱矿骨基质或小肠黏膜下层)可影响干细胞的生长和分化。本研究的假设是,一种新型的韧带衍生基质(LDM)将比单独的胶原凝胶更能增强 hASCs 中韧带表型的表达。使用磷酸盐缓冲盐水或 0.1%过氧乙酸制备的 LDM 与胶原凝胶(COL)混合,并在不同接种密度(0、0.25×10(6)、1×10(6)或 2×10(6)hASC/mL)下在培养 28 天内评估其在 hASCs 增殖、分化和细胞外基质合成中的能力。使用方差分析分析生化和基因表达数据。Fisher 最小显著差异检验用于在方差分析后确定处理之间的差异。无论是在 LDM 还是 COL 中培养的 hASCs,其基因表达都发生了与韧带发育一致的变化。与 COL 中的 hASCs 相比,用 LDM 培养的 hASCs 具有更多的 dsDNA 含量、硫酸化糖胺聚糖积累以及 I 型和 III 型胶原合成,并且释放到培养基中的硫酸化糖胺聚糖和胶原更多(p≤0.05)。与 COL 构建体相比,LDM 构建体中的细胞接种密度增加会使 DNA 含量在培养的 28 天内逐渐增加(p≤0.05)。这些发现表明,LDM 可以刺激 hASCs 产生韧带表型,并且可能为韧带工程应用提供一种新型支架材料。

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Int J Exp Pathol. 2009 Apr;90(2):95-100. doi: 10.1111/j.1365-2613.2008.00637.x.
3
Effect of fiber diameter and alignment of electrospun polyurethane meshes on mesenchymal progenitor cells.
Tissue Eng Part A. 2009 Sep;15(9):2435-45. doi: 10.1089/ten.tea.2008.0295.
4
Joint hypermobility as a distinctive feature in the differential diagnosis of myopathies.
J Neurol. 2009 Jan;256(1):13-27. doi: 10.1007/s00415-009-0105-1. Epub 2009 Feb 9.
6
8
Evaluation criteria for musculoskeletal and craniofacial tissue engineering constructs: a conference report.
Tissue Eng Part A. 2008 Dec;14(12):2089-104. doi: 10.1089/ten.tea.2007.0383.

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