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直接磁性管状细胞接种:一种用于血管组织工程的新方法。

Direct magnetic tubular cell seeding: a novel approach for vascular tissue engineering.

作者信息

Perea Héctor, Aigner Joachim, Hopfner Ursula, Wintermantel Erich

机构信息

Division of Biomedical Engineering, Technische Universitat Munchen, Garching, Germany.

出版信息

Cells Tissues Organs. 2006;183(3):156-65. doi: 10.1159/000095989.

DOI:10.1159/000095989
PMID:17108686
Abstract

Optimizing seeding efficiency, reducing delayed culture periods and mimicking native tissue architecture are crucial requirements for the development of seeding procedures in tissue engineering. In vascular applications, the tubular geometry of the grafts further hampers the efficient delivery of cells onto the scaffold. To overcome these limitations, a novel technology based upon the use of magnetic fields is presented in this study: a radial magnetic force drives the cells immediately onto the luminal surface of a tubular scaffold and immobilizes the cells on the substrate's surface promoting cell attachment. Human smooth muscle cells (SMCs) labeled with CD44 magnetic Dynabeads were successively seeded onto the luminal surface of a tubular shaped collagen membrane. After 5 h, one additional layer of human umbilical vein endothelial cells (HUVECs) labeled with CD31 magnetic Dynabeads was seeded onto the luminal SMCs. The co-culture was incubated during 5 days prior to analysis. Cell viability and expression profiles were preserved during the entire seeding process. Histological examination of the constructs highlighted densely packed multilayers of SMCs covered by a monolayer of endothelial cells. SEM inspection confirmed a heterotypic multilayer assembly formed by multiple layers of elongated SMCs covered by a single layer of endothelial cells. Seeding kinetics of HUVECs and SMCs showed over 90% seeding efficiency after 20 and 40 min magnetic exposure respectively. Magnetically induced cell seeding provides a valuable tool for rapid seeding procedures of tubular scaffolds while complying with the histological architecture of tissue.

摘要

优化接种效率、缩短延迟培养时间以及模拟天然组织结构是组织工程中接种程序发展的关键要求。在血管应用中,移植物的管状几何形状进一步阻碍了细胞向支架的有效递送。为克服这些限制,本研究提出了一种基于磁场使用的新技术:径向磁力将细胞立即驱动到管状支架的管腔表面,并将细胞固定在基质表面以促进细胞附着。用CD44磁性 Dynabeads标记的人平滑肌细胞(SMC)依次接种到管状胶原膜的管腔表面。5小时后,将另一层用CD31磁性 Dynabeads标记的人脐静脉内皮细胞(HUVEC)接种到管腔SMC上。在分析前,将共培养物孵育5天。在整个接种过程中细胞活力和表达谱得以保留。构建体的组织学检查显示,SMC紧密堆积的多层被单层内皮细胞覆盖。扫描电子显微镜检查证实,由多层细长的SMC被单层内皮细胞覆盖形成了异型多层组装体。HUVEC和SMC的接种动力学分别显示,在磁暴露20分钟和40分钟后接种效率超过90%。磁诱导细胞接种为管状支架的快速接种程序提供了一种有价值的工具,同时符合组织的组织结构。

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