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首页> 外文期刊>Acta biomaterialia >Mechano-topographic modulation of stem cell nuclear shape on nanofibrous scaffolds.
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Mechano-topographic modulation of stem cell nuclear shape on nanofibrous scaffolds.

机译:纳米纤维支架上干细胞核形状的机械地形调制。

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Stem cells transit along a variety of lineage-specific routes towards differentiated phenotypes. These fate decisions are dependent not just on the soluble chemical cues that are encountered or enforced in vivo and in vitro, but also on physical cues from the cellular microenvironment. These physical cues can consist of both nano- and micro-scale topographical features, as well as mechanical inputs provided passively (from the base properties of the materials to which they adhere) or actively (from extrinsic applied mechanical deformations). A suitable tool to investigate the coordination of these cues lies in nanofibrous scaffolds, which can both dictate cellular and cytoskeletal orientation and facilitate mechanical perturbation of seeded cells. Here, we demonstrate a coordinated influence of scaffold architecture (aligned vs. randomly organized fibers) and tensile deformation on nuclear shape and orientation. Sensitivity of nuclear morphology to scaffold architecture was more pronounced in stem cell populations than in terminally differentiated fibrochondrocytes. Tension applied to the scaffold elicited further alterations in nuclear morphology, greatest in stem cells, that were mediated by the filamentous actin cytoskeleton, but not the microtubule or intermediate filament network. Nuclear perturbations were time and direction dependent, suggesting that the modality and direction of loading influenced nuclear architecture. The present work may provide additional insight into the mechanisms by which the physical microenvironment influences cell fate decisions, and has specific application to the design of new materials for regenerative medicine applications with adult stem cells.
机译:干细胞沿多种谱系特异性途径向分化表型过渡。这些命运的决定不仅取决于体内和体外遇到或强制执行的可溶性化学信号,还取决于细胞微环境的物理信号。这些物理线索可以包括纳米尺度和微观尺度的地形特征,以及被动地(根据它们所粘附的材料的基本特性)或主动地(根据外部施加的机械变形)提供的机械输入。研究这些线索的协调性的合适工具在于纳米纤维支架,该支架既可以决定细胞和细胞骨架的方向,又可以促进种子细胞的机械扰动。在这里,我们证明了支架结构(排列的纤维与随机组织的纤维)和拉伸变形对核形状和取向的协调影响。在干细胞群体中,核形态对支架结构的敏感性比在终末分化的纤维软骨细胞中更为明显。施加在支架上的张力会引起核形态的进一步变化,这在干细胞中最大,这是由丝状肌动蛋白细胞骨架而不是微管或中间丝网络介导的。核扰动与时间和方向有关,表明装载的方式和方向影响了核结构。本工作可以提供对物理微环境影响细胞命运决定的机制的更多见解,并且可以具体应用于设计具有成体干细胞的再生医学应用的新材料。

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