首页> 外文会议>Society for Biomaterials annual meeting and exposition >Manipulating bioink chemistry and mechanical properties for long-term cell health after 3D printing of gel-phase bioinks
【24h】

Manipulating bioink chemistry and mechanical properties for long-term cell health after 3D printing of gel-phase bioinks

机译:凝胶相生物墨水的3D打印后,可操纵生物墨水的化学和机械特性以实现长期细胞健康

获取原文

摘要

We proved that the PEGX bioink method is compatible with changing the cross-linking chemistry in inks based on natural and synthetic base polymers, as we have shown printable formulations with pseudo-click and copper-free click reactions that led to highly viability cells post-printing. With our post-printing secondary PEG crosslinking treatment, mechanical and degradation (1 day to >4 weeks) properties of printed structures can be tuned in the presence of cells to cover a range (150 Pa to 2kPa) relevant for soft tissue engineering. Enabled by the unique ability of this method to manipulate bioink mechanical properties, we observed that a certain mass flow rate must be reached or exceeded for optimal cell viability post-3D printing. This study is the first of hopefully many by us and others that will help build a foundational understanding of the relationship between extrudable biomaterial properties (chemical, mechanical, and biological) and cell health post-printing to enable fabrication of biomimetic 3D printed structures for various tissue and organ engineering applications.
机译:我们证明了PEGX生物墨水方法与改变基于天然和合成基础聚合物的墨水中的交联化学反应兼容,因为我们已经显示了具有伪点击和无铜点击反应的可印刷配方,可导致高活性的细胞在印刷。通过我们的印刷后二次PEG交联处理,可以在存在细胞的情况下调整印刷结构的机械性能和降解性能(1天至> 4周),以覆盖与软组织工程相关的范围(150 Pa至2kPa)。通过这种方法操纵生物墨水机械性能的独特能力,我们观察到必须达到或超过一定的质量流速,才能实现3D打印后的最佳细胞活力。这项研究是我们和其他研究机构希望进行的许多研究的第一步,它将有助于对可挤压生物材料特性(化学,机械和生物学)与细胞健康后印刷之间的关系建立基础的理解,从而能够制造出适用于各种生物仿生3D打印结构组织和器官工程应用。

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