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一种基于数字微镜器件的系统,用于制造复杂的、具有空间图案的组织工程支架。

A digital micro-mirror device-based system for the microfabrication of complex, spatially patterned tissue engineering scaffolds.

作者信息

Lu Yi, Mapili Gazell, Suhali Gerry, Chen Shaochen, Roy Krishnendu

机构信息

Department of Mechanical Engineering, The University of Texas at Austin, Austin, Texas 78712, USA.

出版信息

J Biomed Mater Res A. 2006 May;77(2):396-405. doi: 10.1002/jbm.a.30601.

Abstract

Our ability to create precise, pre-designed, spatially patterned biochemical and physical microenvironments inside polymer scaffolds could provide a powerful tool in studying progenitor cell behavior and differentiation under biomimetic, three-dimensional (3D) culture conditions. We have developed a simple and fast, layer-by-layer microstereolithography system consisting of an ultra-violet light source, a digital micro-mirror masking device, and a conventional computer projector, that allows fabrication of complex internal features along with precise spatial distribution of biological factors inside a single scaffold. Photo-crosslinkable poly(ethylene glycol) diacrylates were used as the scaffold material, and murine bone marrow-derived cells were successfully encapsulated or seeded on fibronectin-functionalized scaffolds. Fluorescently-labeled polystyrene microparticles were used to show the capability of this system to create scaffolds with complex internal architectures and spatial patterns. We demonstrate that precisely controlled pore size and shapes can be easily fabricated using a simple, computer-aided process. Our results further indicate that multi-layered scaffolds with spatially distributed factors in the same layer or across different layers can be efficiently manufactured using this technique. These microfabricated scaffolds are conducive for osteogenic differentiation of marrow-derived stem cells, as indicated by efficient matrix mineralization.

摘要

我们在聚合物支架内部创建精确、预先设计的、具有空间图案的生化和物理微环境的能力,可为研究仿生三维(3D)培养条件下祖细胞的行为和分化提供强大工具。我们开发了一种简单快速的逐层微立体光刻系统,该系统由紫外光源、数字微镜掩膜装置和传统计算机投影仪组成,能够在单个支架内部制造复杂的内部特征以及生物因子的精确空间分布。可光交联的聚乙二醇二丙烯酸酯用作支架材料,小鼠骨髓来源的细胞成功包封或接种在纤连蛋白功能化的支架上。荧光标记的聚苯乙烯微粒用于展示该系统创建具有复杂内部结构和空间图案的支架的能力。我们证明,使用简单的计算机辅助工艺可以轻松制造精确控制的孔径和形状。我们的结果进一步表明,使用该技术可以高效制造在同一层或不同层中具有空间分布因子的多层支架。如高效的基质矿化所示,这些微制造的支架有利于骨髓来源干细胞的成骨分化。

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