首页> 外文会议>Solid Freeform Fabrication Symposium >MULTI-MATERIAL STEREOLITHOGRAPHY: SPATIALLY-CONTROLLED BIOACTIVE POLY(ETHYLENE GLYCOL) SCAFFOLDS FOR TISSUE ENGINEERING
【24h】

MULTI-MATERIAL STEREOLITHOGRAPHY: SPATIALLY-CONTROLLED BIOACTIVE POLY(ETHYLENE GLYCOL) SCAFFOLDS FOR TISSUE ENGINEERING

机译:多材料立体光刻:用于组织工程的空间控制的生物活性聚(乙二醇)支架

获取原文

摘要

Challenges remain in tissue engineering to control the spatial and temporal mechanical and biochemical architectures of scaffolds. Unique capabilities of stereolithography (SL) for fabricating multi-material spatially-controlled bioactive scaffolds were explored in this work. To accomplish multi-material builds with implantable materials, a new mini-vat setup was designed, constructed and placed on top of the existing build platform to allow for accurate and self-aligning X-Y registration during fabrication. Precise quantities of photocrosslinkable solution were added to and removed from the mini-vat using micro-pipettes. The mini-vat setup allowed the part to be easily removed and rinsed and different photocrosslinkable solutions could be easily removed and added to the vat to aid in multi-material fabrication. Two photocrosslinkable hydrogel biopolymers, poly(ethylene glycol dimethacrylate) (PEG-dma, molecular wt 1,000) and poly(ethylene glycol)-diacrylate (PEG-da, molecular wt 3,400), were used as the primary scaffold materials, and controlled concentrations of fluorescently labeled dextran or bioactive PEG were prescribed and fabricated in different regions of the scaffold using SL. The equilibrium swelling behavior of the two biopolymers after SL fabrication was determined and used to design constructs with the specified dimensions at the swollen state. Two methods were used to measure the spatial gradients enabled by this process with multi-material spatial control successfully demonstrated down to 500-μm. First, the presence of the fluorescent component in specific regions of the scaffold was analyzed with fluorescent microscopy. Second, human dermal fibroblast cells were seeded on top of the fabricated scaffolds with selective bioactivity, and phase contrast microscopy images were used to show specific localization of cells in the regions patterned with bioactive PEG. The use of multi-material SL and the relative ease of conjugating different bioactive ligands or growth factors to PEG allows for the fabrication of tailored three-dimensional constructs with specified spatially-controlled bioactivity.
机译:挑战仍然存在在组织工程,以控制支架的空间和时间的机械和生物化学架构。立体光刻(SL)用于制造多材料在空间上控制的生物活性支架的独特能力在这项工作中进行了探索。为了完成多材料与植入材料构建,一个新的迷你大桶安装被设计,构造并放置在现有的构造平台的顶部,以允许在制造过程中准确和自动调心的X-Y定位。光交联溶液的精确量加入并使用微吸液管从微型大桶除去。微型大桶设置允许容易地移除的部分并冲洗和不同光交联溶液可被容易地移除,并添加到大桶到援助在多材料制造。两个光交联水凝胶的生物聚合物,聚(乙二醇二甲基丙烯酸酯)(PEG-DMA,分子重量1000)和聚(乙二醇)-diacrylate(PEG-DA,分子重量3400),使用了作为主支架材料,和受控的浓度荧光标记的葡聚糖或生物活性PEG被规定并且在使用SL支架的不同区域制造。平衡后测定并用于在溶胀状态来设计具有指定尺寸的构建体SL制造肿胀两个生物聚合物的行为。两种方法用于测量通过该方法与成功地证明下降到500微米的多材料空间控制启用空间梯度。首先,在支架的特定区域荧光组分的存在,用荧光显微镜分析。第二,人类真皮成纤维细胞接种在具有选择性的生物活性所制造的支架的顶部,并且相差显微镜图像被用来显示与生物活性PEG图案化的区域细胞的特异性定位。使用多材料SL和相对容易缀合生物活性不同的配体或生长因子的PEG的允许具有指定空间控制的生物活性定制三维结构的制造。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号