Takei Takayuki, Sakai Shinji, Ono Tsutomu, Ijima Hiroyuki, Kawakami Koei
Department of Chemical Engineering, Faculty of Engineering, Kyushu University, 744 Motooka, Fukuoka 819-0385, Japan.
Biotechnol Bioeng. 2006 Sep 5;95(1):1-7. doi: 10.1002/bit.20903.
A possible strategy for creating three-dimensional (3D) tissue-engineered organs in vitro with similar volumes to the primary organs is to develop a capillary network throughout the constructs to provide sufficient oxygenation and nutrition to the cells composing them. Here, we propose a novel approach for the creation of a capillary-like network in vitro, based on the spontaneous tube-forming activity of vascular endothelial cells (ECs) in collagen gel. We fabricated a linear tube of 500 microm in diameter, the inner surface of which was filled with bovine carotid artery vascular endothelial cells (BECs), in type I collagen gel as a starting point for the formation of a capillary-like network. The BECs exposed to a medium containing vascular endothelial growth factor (VEGF) migrated into the ambient gel around the tube. After 2 weeks of VEGF exposure, the distance of the migration into the ambient gel in the radial direction of the tube reached approximately 800 microm. Cross-sections of capillary-like structures composed of the migrating BECs, with a lumen-like interior space, were observed in slices of the gel around the tube stained with hematoxylin-eosin (H&E). These results demonstrate that this approach using a pre-established tube, which is composed of ECs, as a starting point for a self-developing capillary-like network is potentially useful for constructing 3D organs in vitro.
在体外构建与原生器官体积相似的三维(3D)组织工程器官的一种可能策略是在整个构建体中形成毛细血管网络,为构成它们的细胞提供充足的氧合作用和营养。在此,我们基于血管内皮细胞(ECs)在胶原凝胶中的自发成管活性,提出一种在体外创建类毛细血管网络的新方法。我们在I型胶原凝胶中制作了一根直径为500微米的线性管,其内壁填充有牛颈动脉血管内皮细胞(BECs),以此作为形成类毛细血管网络的起点。暴露于含有血管内皮生长因子(VEGF)培养基中的BECs迁移到管周围的周围凝胶中。在VEGF暴露2周后,BECs在管径向方向上迁移到周围凝胶中的距离达到约800微米。在用苏木精 - 伊红(H&E)染色的管周围凝胶切片中观察到由迁移的BECs组成的具有类似管腔内部空间的类毛细血管结构的横截面。这些结果表明,这种以由ECs组成的预先建立的管作为自我发育类毛细血管网络起点的方法,对于在体外构建3D器官可能是有用的。