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Remodeling of Engineered Tissue Anisotropy in Response to Altered Loading Conditions

机译:改造工程组织各向异性以响应改变的载荷条件

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摘要

Structural and mechanical anisotropy are critical to the function of many engineered tissues. This study examined the ability of anisotropic tissue constructs to overcome contact guidance cues and remodel in response to altered mechanical loading conditions. Square tissues engineered from dermal fibroblasts and type-I collagen were uniaxially loaded to induce cell and matrix alignment. After an initial time, t*, of 5 to 72 hrs, loading was switched from the x-axis to the y-axis. Cell alignment was examined throughout the experiment until a steady state was reached. Before t*, cells spontaneously aligned in the x-direction. After t*, the strength of alignment transiently decreased then increased, and mean cell orientation transitioned from the x- to the y-direction following an exponential time course with a time constant that increased with t*. Collagen fiber orientation exhibited similar trends that could not be explained by passive kinematics alone. Structural realignment resulted in concomitant changes in biaxial tissue mechanical properties. The findings suggest that even highly aligned engineered tissue constructs retain the capacity to remodel in response to altered mechanical stimuli. This may have important functional consequences when an anisotropic engineered tissue designed in vitro is surgically implanted into a mechanically complex graft site.
机译:结构和机械各向异性对许多工程组织的功能至关重要。这项研究检查了各向异性组织构造克服接触引导提示并响应变化的机械载荷条件进行重塑的能力。由真皮成纤维细胞和I型胶原蛋白改造而成的方形组织被单轴加载以诱导细胞和基质排列。在5到72小时的初始时间t *之后,负载从x轴切换到y轴。在整个实验中检查细胞排列直至达到稳态。在t *之前,单元格在x方向上自发对齐。在t *之后,排列强度瞬时下降,然后增加,并且平均细胞取向遵循指数时间过程,从x方向转变为y方向,时间常数随t *的增加而增加。胶原纤维取向表现出相似的趋势,仅被动运动学无法解释。结构重新排列导致双轴组织机械性能的同时变化。这些发现表明,即使高度对齐的工程组织构建体也保留了响应改变的机械刺激而进行重塑的能力。当体外设计的各向异性工程组织通过外科手术植入机械复杂的移植部位时,这可能会产生重要的功能后果。

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