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通过生物激光打印(BioLP)在水凝胶层上构建人脐静脉内皮细胞(HUVEC)和人脐静脉平滑肌细胞(HUVSMC)的分支/茎结构。

Development of human umbilical vein endothelial cell (HUVEC) and human umbilical vein smooth muscle cell (HUVSMC) branch/stem structures on hydrogel layers via biological laser printing (BioLP).

机构信息

Department of Physics, Southern Oregon University, Ashland, OR 97520, USA.

出版信息

Biofabrication. 2010 Mar;2(1):014111. doi: 10.1088/1758-5082/2/1/014111. Epub 2010 Mar 10.

Abstract

Angiogenesis is one of the prerequisite steps for viable tissue formation. The ability to influence the direction and structure in the formation of a vascular system is crucial in engineering tissue. Using biological laser printing (BioLP), we fabricated branch/stem structures of human umbilical vein endothelial cells (HUVEC) and human umbilical vein smooth muscle cells (HUVSMC). The structure is simple as to mimic vascular networks in natural tissue but also allow cells to develop new, finer structures away from the stem and branches. Additionally, we printed co-culture structures by first depositing only HUVECs, followed by 24 h incubation to allow for adequate cell-cell communication and differentiation into lumina; these cell printed scaffold layers were then removed from incubation and inserted into the BioLP apparatus so that HUVSMCs could be directly deposited on top and around the previously printed HUVEC structures. The growth and differentiation of these co-culture structures was then compared to the growth of printed samples with either HUVECs or HUVSMCs alone. Lumen formation was found to closely mimic the original branch and stem structure. The beginning of a network structure is observed. HUVSMCs acted to limit HUVEC over-growth and migration when compared to printed HUVEC structures alone. HUVSMCs and HUVECS, when printed in close contact, appear to form cell-cell junctions around lumen-like structures. They demonstrate a symbiotic relationship which affects their development of phenotype when in close proximity of each other. Our results indicate that it is possible to direct the formation and growth of lumen and lumen network using BioLP.

摘要

血管生成是组织存活的必要前提之一。影响血管系统形成的方向和结构的能力对于组织工程至关重要。我们使用生物激光打印(BioLP)技术制造了人脐静脉内皮细胞(HUVEC)和人脐静脉平滑肌细胞(HUVSMC)的分支/茎结构。该结构简单,可模拟天然组织中的血管网络,但也允许细胞在远离茎和分支的地方形成新的、更精细的结构。此外,我们首先仅沉积 HUVEC 来打印共培养结构,然后进行 24 小时孵育,以允许细胞充分进行细胞间通讯并分化为管腔;然后将这些细胞打印支架层从孵育中取出,并插入 BioLP 设备中,以便 HUVSMCs 可以直接沉积在之前打印的 HUVEC 结构的顶部和周围。然后将这些共培养结构的生长和分化与单独使用 HUVEC 或 HUVSMC 打印的样品的生长进行比较。发现管腔形成紧密模拟原始分支和茎结构。观察到网络结构的开始。与单独打印的 HUVEC 结构相比,HUVSMCs 可限制 HUVEC 的过度生长和迁移。当 HUVSMCs 和 HUVECs 紧密接触打印时,似乎在类似管腔的结构周围形成细胞-细胞连接。它们表现出共生关系,当彼此紧密接近时,会影响它们表型的发育。我们的结果表明,使用 BioLP 可以定向管腔和管腔网络的形成和生长。

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