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Modulating the Behaviors of Mesenchymal Stem Cells Via the Combination of High-Frequency Vibratory Stimulations and Fibrous Scaffolds

机译:通过高频振动刺激和纤维支架的组合调节间充质干细胞的行为

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We are interested in the in vitro engineering of artificial vocal fold tissues via the strategic combination of multipotent mesenchymal stem cells (MSCs), physiologically relevant mechanical stimulations, and biomimetic artificial matrices. We have constructed a vocal fold bioreactor that is capable of imposing vibratory stimulations on the cultured cells at human phonation frequencies. Separately, fibrous poly (?-caprolactone) (PCL) scaffolds emulating the ligamentous structure of the vocal fold were prepared by electrospinning, were incorporated in the vocal fold bioreactor, and were driven into a wave-like motion in an axisymmetrical fashion by the oscillating air. MSC-laden PCL scaffolds were subjected to vibrations at 200?Hz with a normal center displacement of ~40?μm for a total of 7 days. A continuous (CT) or a 1?h-on-1?h-off (OF) regime with a total dynamic culture time of 12?h per day was applied. The dynamic loading did not cause any physiological trauma to the cells. Immunohistotochemical staining revealed the reinforcement of the actin filament and the enhancement of α5β1 integrin expression under selected dynamic culture conditions. Cellular expression of essential vocal fold extracellular matrix components, such as elastin, hyaluronic acid, and matrix metalloproteinase-1, was significantly elevated as compared with the static controls, and the OF regime is more conducive to matrix production than the CT vibration mode. Analyses of genes of typical fibroblast hallmarks (tenascin-C, collagen III, and procollagen I) as well as markers for MSC differentiation into nonfibroblastic lineages confirmed MSCs' adaptation of fibroblastic behaviors. Overall, the high-frequency vibratory stimulation, when combined with a synthetic fibrous scaffold, serves as a potent modulator of MSC functions. The novel bioreactor system presented here, as a versatile, yet well-controlled model, offers an in vitro platform for understanding vibration-induced mechanotransduction and for engineering of functional vocal fold tissues.
机译:我们对人造声带组织的体外工程感兴趣,通过多能间充质干细胞(MSCs),生理相关的机械刺激和仿生人工矩阵的战略组合。我们构建了一种声带生物反应器,其能够在人声音频率下对培养的细胞施加振动刺激。单独的纤维聚(α-己内酯)(PCL)支架通过静电纺丝制备了模拟声带的纵缘结构,掺入声学折叠生物反应器中,并通过振荡以轴对称方式驱动到波状运动中空气。将MSC-LADEN PCL支架在200℃下进行振动,具有〜40Ω·μm的正常中心位移,共7天。应用连续(CT)或1?H-ON-1?H-OFF(部分)制度,每天总动态培养时间为12μl。动态载荷不会导致细胞的任何生理创伤。免疫组织化化学染色揭示了肌动蛋白丝的增强以及在选定的动态培养条件下提高α5β1整联蛋白表达。与静态对照相比,基本声带细胞外基质组分(例如Elastin,透明质酸和基质金属蛋白酶-1)的细胞表达显着升高,并且该制度更有利于基质产生而不是CT振动模式。典型成纤维细胞标志(Tenascin-C,胶原III和ProCollagen I)的基因分析,以及MSC分化成非束血管谱系的标志物证实了MSCS对成纤维结构行为的适应。总体而言,当与合成纤维支架结合时,高频振动刺激用作MSC功能的有效调制器。这里提出的新型生物反应器系统作为多功能且受控的型号,提供了一个体外平台,用于了解振动诱导的机电展示和功能性声带组织的工程。

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