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Pressure assisted multi-syringe single nozzle deposition system for the fabrication of heterogeneous scaffolds.

机译:压力辅助多注射器单喷嘴沉积系统,用于制造异质支架。

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摘要

This research focuses on the development of a layered based novel fabrication methodology for three-dimensional tissue scaffolds with heterogeneous structure of varying concentrations of drug molecules and/or multiple bio-materials. In this research, in addition to the function of scaffolds as supporting structures, the scaffolds are developed that are capable of releasing proteins and growth factors locally for improved angiogenesis and morphogenesis, and hence decreasing recovery time. A pressure assisted multi-syringe single nozzle deposition system has been developed for the fabrication that can overcome the limitations of conventional layered-based fabrication techniques. A custom designed nozzle has been fabricated to converge the flows from two syringes into a small mixing chamber. An automatic system for pressure control has been proposed to fabricate tissue scaffolds using hydrogel based bio-materials with enclosed drugs or proteins. The presented work also details the fluid model for pressure requirements and material volume flow for a biomaterial. Sodium alginic acid is selected as scaffold bio-material and cross-linked with calcium chloride solution for gelation. The designed system is able to fabricate 3D structures from hydrogels with varying concentration of drug microspheres depending on the design requirements. Scaffolds are successfully fabricated with different nozzles of diameter 100mum, 150mum and 200mum with varying porosities.;Keywords. Heterogeneous scaffold, tissue engineering, multi-syringe single nozzle deposition, automated pressure control system (APCS).
机译:这项研究的重点是为具有不同浓度的药物分子和/或多种生物材料的异质结构的三维组织支架开发基于分层的新型制造方法。在这项研究中,除了支架作为支撑结构的功能外,还开发了能够局部释放蛋白质和生长因子以改善血管生成和形态发生,从而减少恢复时间的支架。已经开发了一种压力辅助的多注射器单喷嘴沉积系统,该系统可以克服传统的基于层的制造技术的局限性。已制造出定制设计的喷嘴,以将来自两个注射器的流量汇聚到一个小的混合室中。已经提出了一种用于压力控制的自动系统,以使用具有封闭药物或蛋白质的基于水凝胶的生物材料来制造组织支架。提出的工作还详细介绍了用于生物材料的压力要求和材料体积流量的流体模型。选择海藻酸钠作为支架生物材料,并与氯化钙溶液交联进行凝胶化。设计的系统能够根据设计要求,由具有不同浓度的药物微球的水凝胶制造3D结构。使用不同孔隙度的直径分别为100mum,150mum和200mum的喷嘴成功地制造了脚手架。异构支架,组织工程,多针单喷嘴沉积,自动压力控制系统(APCS)。

著录项

  • 作者

    Chimate, Chetan.;

  • 作者单位

    State University of New York at Buffalo.;

  • 授予单位 State University of New York at Buffalo.;
  • 学科 Engineering General.;Engineering Mechanical.;Engineering Industrial.
  • 学位 M.S.
  • 年度 2010
  • 页码 89 p.
  • 总页数 89
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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