Mechanically conditioned cell sheets cultured on thermo-responsive surfaces promote bone regeneration.

Gen Wang, Zhangqin Yuan, Li Yu, Yingkang Yu, Pinghui Zhou, Genglei Chu, Huan Wang, Qianping Guo, Caihong Zhu, Fengxuan Han, Song Chen, Bin Li
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引用次数: 3

Abstract

Cell sheet-based scaffold-free technology holds promise for tissue engineering applications and has been extensively explored during the past decades. However, efficient harvest and handling of cell sheets remain challenging, including insufficient extracellular matrix content and poor mechanical strength. Mechanical loading has been widely used to enhance extracellular matrix production in a variety of cell types. However, currently, there are no effective ways to apply mechanical loading to cell sheets. In this study, we prepared thermo-responsive elastomer substrates by grafting poly(N-isopropyl acrylamide) (PNIPAAm) to poly(dimethylsiloxane) (PDMS) surfaces. The effect of PNIPAAm grafting yields on cell behaviours was investigated to optimize surfaces suitable for cell sheet culturing and harvesting. Subsequently, MC3T3-E1 cells were cultured on the PDMS-g-PNIPAAm substrates under mechanical stimulation by cyclically stretching the substrates. Upon maturation, the cell sheets were harvested by lowering the temperature. We found that the extracellular matrix content and thickness of cell sheet were markedly elevated upon appropriate mechanical conditioning. Reverse transcription quantitative polymerase chain reaction and Western blot analyses further confirmed that the expression of osteogenic-specific genes and major matrix components were up-regulated. After implantation into the critical-sized calvarial defects of mice, the mechanically conditioned cell sheets significantly promoted new bone formation. Findings from this study reveal that thermo-responsive elastomer, together with mechanical conditioning, can potentially be applied to prepare high-quality cell sheets for bone tissue engineering.

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在热响应表面培养的机械条件细胞片促进骨再生。
基于细胞片的无支架技术有望在组织工程中应用,在过去的几十年里得到了广泛的探索。然而,有效的收获和处理细胞片仍然具有挑战性,包括细胞外基质含量不足和机械强度差。机械加载已被广泛用于提高细胞外基质的生产在各种细胞类型。然而,目前还没有有效的方法来对细胞片施加机械载荷。在这项研究中,我们通过将聚n -异丙基丙烯酰胺(PNIPAAm)接枝到聚二甲基硅氧烷(PDMS)表面来制备热敏弹性体衬底。研究了PNIPAAm接枝率对细胞行为的影响,以优化适合细胞片培养和收获的表面。随后,将MC3T3-E1细胞培养在PDMS-g-PNIPAAm底物上,通过循环拉伸底物进行机械刺激。成熟后,通过降低温度收获细胞片。我们发现,在适当的机械调节下,细胞外基质含量和细胞片厚度明显升高。逆转录定量聚合酶链反应和Western blot分析进一步证实了成骨特异性基因和主要基质成分的表达上调。将机械条件下的细胞片植入小鼠临界尺寸的颅骨缺损后,可显著促进新骨的形成。这项研究的结果表明,热响应弹性体,连同机械调节,可以潜在地应用于制备高质量的骨组织工程细胞片。
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9
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