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Enhanced Differentiation of Human Embryonic Stem Cells on Extracellular Matrix-Containing Osteomimetic Scaffolds for Bone Tissue Engineering

机译:人胚干细胞在细胞外基质骨模拟支架上的增强分化作用,用于骨组织工程

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Current methods of treating critical size bone defects include autografts and allografts, however, both present major limitations including donor-site morbidity, risk of disease transmission, and immune rejection. Tissue engineering provides a promising alternative to circumvent these shortcomings through the use of autologous cells, three-dimensional scaffolds, and growth factors. We investigated the development of a scaffold with native bone extracellular matrix (ECM) components for directing the osteogenic differentiation of human embryonic stem cells (hESCs). Toward this goal, a microsphere-sintering technique was used to fabricate poly(lactic-co-glycolic acid) (PLGA) scaffolds with optimum mechanical and structural properties. Human osteoblasts (hOBs) were seeded on these scaffolds to deposit bone ECM for 14 days. This was followed by a decellularization step leaving the mineralized matrix intact. Characterization of the decellularized PLGA scaffolds confirmed the deposition of calcium, collagen II, and alkaline phosphatase by osteoblasts. hESCs were seeded on the osteomimetic substrates in the presence of osteogenic growth medium, and osteogenicity was determined according to calcium content, osteocalcin expression, and bone marker gene regulation. Cell proliferation studies showed a constant increase in number for hESCs seeded on both PLGA and ECM-coated PLGA scaffolds. Calcium deposition by hESCs was significantly higher on the osteomimetic scaffolds compared with the control groups. Consistently, immunofluorescence staining demonstrated an increased expression of osteocalcin in hESCs seeded on ECM-coated osteomimetic PLGA scaffolds. Gene expression analysis of RUNX2 and osteocalcin further confirmed osteogenic differentiation of hESCs at the highest expression level on osteomimetic PLGA. These results together demonstrate the potential of PLGA scaffolds with native bone ECM components to direct osteogenic differentiation of hESCs and induce bone formation.
机译:当前治疗临界尺寸骨缺损的方法包括自体移植和同种异体移植,但是,这两种方法都存在主要局限性,包括供体部位发病率,疾病传播的风险和免疫排斥。组织工程学为通过使用自体细胞,三维支架和生长因子规避这些缺点提供了一种有前途的选择。我们研究了具有天然骨细胞外基质(ECM)成分的支架的开发,该支架用于指导人类胚胎干细胞(hESCs)的成骨分化。为了达到这个目标,微球烧结技术被用来制造具有最佳机械和结构性能的聚乳酸-乙醇酸共聚物(PLGA)支架。将人类成骨细胞(hOB)播种在这些支架上,以沉积骨ECM 14天。随后是脱细胞步骤,使矿化基质保持完整。去细胞PLGA支架的表征证实了成骨细胞沉积了钙,胶原蛋白II和碱性磷酸酶。在成骨生长培养基存在的情况下,将hESCs接种在拟骨基质上,并根据钙含量,骨钙素表达和骨标志物基因调控来确定成骨性。细胞增殖研究表明,接种在PLGA和ECM涂层的PLGA支架上的hESC数量不断增加。与对照组相比,仿生支架上hESCs的钙沉积明显更高。一致地,免疫荧光染色表明,在ECM涂层的拟仿体PLGA支架上接种的hESC中骨钙素的表达增加。 RUNX2和骨钙素的基因表达分析进一步证实了在仿骨PLGA上以最高表达水平的hESCs的成骨分化。这些结果一起证明了具有天然骨ECM组分的PLGA支架潜在地指导hESC的成骨分化并诱导骨形成。

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