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Longitudinal Stretching for Maturation of Vascular Tissues Using Magnetic Forces

机译:纵向拉伸利用磁力使血管组织成熟

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摘要

Cellular spheroids were studied to determine their use as “bioinks” in the biofabrication of tissue engineered constructs. Specifically, magnetic forces were used to mediate the cyclic longitudinal stretching of tissues composed of Janus magnetic cellular spheroids (JMCSs), as part of a post-processing method for enhancing the deposition and mechanical properties of an extracellular matrix (ECM). The purpose was to accelerate the conventional tissue maturation process via novel post-processing techniques that accelerate the functional, structural, and mechanical mimicking of native tissues. The results of a forty-day study of JMCSs indicated an expression of collagen I, collagen IV, elastin, and fibronectin, which are important vascular ECM proteins. Most notably, the subsequent exposure of fused tissue sheets composed of JMCSs to magnetic forces did not hinder the production of these key proteins. Quantitative results demonstrate that cyclic longitudinal stretching of the tissue sheets mediated by these magnetic forces increased the Young’s modulus and induced collagen fiber alignment over a seven day period, when compared to statically conditioned controls. Specifically, the elastin and collagen content of these dynamically-conditioned sheets were 35- and three-fold greater, respectively, at seven days compared to the statically-conditioned controls at three days. These findings indicate the potential of using magnetic forces in tissue maturation, specifically through the cyclic longitudinal stretching of tissues.
机译:研究了细胞球体,以确定它们在组织工程构建体的生物制造中用作“生物墨水”的用途。具体来说,磁力是用来调节由Janus磁性细胞球体(JMCSs)组成的组织的循环纵向拉伸的一部分,是增强细胞外基质(ECM)沉积和机械性能的后处理方法的一部分。目的是通过新颖的后处理技术来加速常规组织的成熟过程,该后处理技术可加速天然组织的功能,结构和机械模拟。 JMCS的四十天研究结果表明,胶原蛋白I,胶原蛋白IV,弹性蛋白和纤连蛋白的表达,它们是重要的血管ECM蛋白。最值得注意的是,随后将由JMCS组成的融合组织薄片暴露于磁力下,并不妨碍这些关键蛋白的产生。定量结果表明,与静态调节对照组相比,由这些磁力介导的组织薄片的周期性纵向拉伸在7天的时间内增加了杨氏模量并诱导了胶原纤维的排列。特别地,与三天的静态调理对照相比,这些动态调理的薄片的弹性蛋白和胶原蛋白含量在第七天分别高出35倍和三倍。这些发现表明在组织成熟中特别是通过组织的周期性纵向拉伸使用磁力的潜力。

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