成纤维细胞形成的各向异性脱细胞工程心脏组织

V. Vejseli, E. Lee
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引用次数: 2

摘要

虽然结构各向异性对正常心肌的正常功能至关重要,但在体外模拟天然组织的结构结构一直是一个挑战。以前的研究集中在使用二维培养利用底物的微图案化。在这里,我们提出了三维(3D)脱细胞工程组织与控制不同程度的细胞外基质排列。工程组织最初是通过将心脏成纤维细胞包埋在3D胶原组织(大鼠尾I型胶原,BD科学)中,并在双轴或单轴约束下培养而成。双轴约束组织显示细胞和胶原纤维的方向随机,而单轴约束组织显示细胞和胶原纤维平行于约束方向排列。为了促进心肌成纤维细胞细胞外基质的沉积,每3天在培养基中添加5 ng/ml抗坏血酸。一旦获得所需的结构对齐,使用CHAPS缓冲液和SDS缓冲液进行脱细胞处理,在37℃下轻轻搅拌1小时,去除细胞。通过DNA定量证实细胞的去除,并通过共聚焦反射光显微镜证实完整的胶原纤维取向。本研究证明了结合脱细胞技术建立脱细胞各向异性工程组织的可行性,该组织可用于评估生物物理线索对干细胞或干细胞衍生的心肌细胞分化和体外功能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cardiac Fibroblast-Formed Anisotropic Decellularized Engineered Cardiac Tissues
Although structural anisotropy is important for proper function of normal myocardium, it has been a challenge to mimic structural architecture of native tissue in vitro. Previous studies have focused on using two-dimensional cultures utilizing micropatterning of substrates. Here, we present three-dimensional (3D) decellularized engineered tissues with a controlled varying degree of extracellular matrix alignment. Engineered tissues were initially created by embedding cardiac fibroblasts in 3D collagen tissues (rat tail type I collagen, BD sciences) and cultured either under biaxial or uniaxial constraints. Biaxially constrained tissues yielded a random orientation of both cell and collagen fibers, while uniaxially constrained tissues showed that the cell and collagen fibers aligned parallel to the constrained direction. To facilitate cardiac fibroblast deposition of extracellular matrix, culture medium was supplemented with 5 ng/ml ascorbic acid every 3 days. Once desired structural alignment was obtained, cells were removed by decellurization treatment using CHAPS buffer followed by SDS buffer for 1 hr at 37°C with gentle agitation. Removal of cells was confirmed by DNA quantification and intact collagen fiber orientation was confirmed by confocal reflected light microscopy. This study demonstrates the feasibility of creating cell-formed structural alignment combined with decellularization technique to establish decellularized anisotropic engineered tissue, which can be used to evaluate the effects of biophysical cues on stem cell or stem cell-derived cardiomyocyte differentiation and function in vitro.
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