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Systematic analysis of embryonic stem cell differentiation in hydrodynamic environments with controlled embryoid body size

机译:拟胚体大小受控的水动力环境中胚胎干细胞分化的系统分析

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摘要

The sensitivity of stem cells to environmental perturbations has prompted many studies which aim to characterize the influence of mechanical factors on stem cell morphogenesis and differentiation. Hydrodynamic cultures, often employed for large scale bioprocessing applications, impart complex fluid shear and transport profiles, and influence cell fate as a result of changes in media mixing conditions. However, previous studies of hydrodynamic cultures have been limited in their ability to distinguish confounding factors that may affect differentiation, including modulation of embryoid body size in response to changes in the hydrodynamic environment. In this study, we demonstrate the ability to control and maintain embryoid body (EB) size using a combination of forced aggregation formation and rotary orbital suspension culture, in order to assess the impact of hydrodynamic cultures on ESC differentiation, independent of EB size. Size-controlled EBs maintained at different rotary orbital speeds exhibited similar morphological features and gene expression profiles, consistent with ESC differentiation. The similar differentiation of ESCs across a range of hydrodynamic conditions suggests that controlling EB formation and resultant size may be important for scalable bioprocessing applications, in order to standardize EB morphogenesis. However, perturbations in the hydrodynamic environment also led to subtle changes in differentiation toward certain lineages, including temporal modulation of gene expression, as well changes in the relative efficiencies of differentiated phenotypes, thereby highlighting important tissue engineering principles that should be considered for implementation in bioreactor design, as well as for directed ESC differentiation.
机译:干细胞对环境扰动的敏感性促使许多研究旨在表征机械因素对干细胞形态发生和分化的影响。通常用于大规模生物处理应用的流体动力学培养会产生复杂的流体剪切和运输曲线,并且由于培养基混合条件的变化而影响细胞命运。但是,先前对水动力培养物的研究在区分可能影响分化的混杂因素的能力方面受到限制,包括响应水动力环境的变化而调节胚状体大小的能力。在这项研究中,我们证明了使用强制聚集形成和旋转轨道悬浮培养的组合来控制和维持胚状体(EB)大小的能力,以便评估水动力培养对ESC分化的影响,而与EB大小无关。维持在不同旋转轨道速度的大小受控的EB表现出相似的形态特征和基因表达谱,与ESC分化一致。 ESC在一系列流体动力学条件下的相似区分表明,为了标准化EB形态发生,控制EB的形成和最终尺寸对于可扩展的生物处理应用可能很重要。然而,在流体动力学环境中的扰动还导致向某些谱系的分化的细微变化,包括基因表达的时间调节,以及分化表型的相对效率的变化,从而突出了重要的组织工程原理,应在生物反应器中实施设计,以及用于定向ESC分化。

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    《Integrative Biology》 |2012年第6期|p.641-650|共10页
  • 作者单位

    1. The Wallace H. Coulter Department of Biomedical Engineering,Georgia Institute of Technology, 313 Ferst Drive, Suite 2102, Atlanta,;

    1. The Wallace H. Coulter Department of Biomedical Engineering,Georgia Institute of Technology, 313 Ferst Drive, Suite 2102, Atlanta,;

    1. The Wallace H. Coulter Department of Biomedical Engineering,Georgia Institute of Technology, 313 Ferst Drive, Suite 2102, Atlanta, @@2. The Parker H. Petit Institute for Bioengineering and Bioscience,Georgia Institute of Technology, 315 Ferst Drive, Atlanta,;

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