首页> 外文期刊>Journal of Applied Polymer Science >A novel direct aerodynamically assisted threading methodology for generating biologically viable microthreads encapsulating living primary cells
【24h】

A novel direct aerodynamically assisted threading methodology for generating biologically viable microthreads encapsulating living primary cells

机译:一种新颖的直接气动辅助穿线方法,用于产生包裹活体原代细胞的生物学上可行的微线

获取原文
获取原文并翻译 | 示例
           

摘要

In a recent discovery, coaxial electrospinning was explored to encapsulate living organisms within a continuous bio-polymeric microthread from which active biological scaffolds were fabricated (Townsend-Nicholson and Jayasinghe, Biomacromolecules 2006, 7, 3364). The cells were demonstrated to have gone through all expected cellular activity without their viability being compromised. These biologically active threads and scaffolds have direct and tremendous applicability from regenerative to therapeutic medicine. Currently these post-processed cells as composite threads and scaffolds are being investigated in-depth at a cellular level to establish if the processing methodology has any affect on the cellular make-up. We now demonstrate a competing non-electric field driven approach for fabricating composite threads and scaffolds influenced only by a differential pressure. We refer to this novel composite thread to scaffold fabrication methodology as coaxial aerodynamically assisted bio-threading (CAABT). Our investigations firstly, demonstrate that this technique can process handle living organisms without biologically perturbing them in anyway. Secondly the process is elucidated as possessing the ability to form composite active threads from which biologically viable scaffolds are formed. Finally our study employs florescent activated cell sorting (FACScan), a method by which the cellular dynamics and viability are quantified on control and threaded cellular samples at two prescribed time points. In parallel with FACScan, optical comparison of cellular morphology at three time points within a period of three weeks is carried out to photographically observe any changes in the post-processed cellular phenotype. Our developmental investigations into this novel aerodynamically assisted threading methodology has unearthed a unique biomicrofabrication approach, which joins cell electrospinning in the cell threading to scaffold fabrication endeavor. (C) 2007 Wiley Periodicals, Inc.
机译:在最近的发现中,探索了同轴电纺将生物包裹在连续的生物聚合物微丝中,从中制备了活性生物支架(Townsend-Nicholson和Jayasinghe,Biomacromolecules 2006,7,3364)。证明这些细胞经历了所有预期的细胞活性,而它们的生存能力并未受到损害。这些生物活性线和支架具有从再生医学到治疗医学的直接和巨大的适用性。当前,正在细胞水平上对这些作为复合线和支架的后处理细胞进行深入研究,以确定加工方法是否对细胞组成有影响。我们现在展示一种竞争性的非电场驱动方法,用于制造仅受压差影响的复合线和脚手架。我们将这种新型的复合材料脚手架制造方法称为同轴空气动力辅助生物穿线(CAABT)。我们的研究首先表明,该技术可以处理活生物体,而无论如何都不会对其造成生物干扰。其次,该方法被阐明为具有形成复合活性线的能力,从该复合活性线可形成生物学上可行的支架。最后,我们的研究采用荧光激活细胞分选(FACScan),通过该方法可以在两个规定的时间点对对照和穿线细胞样品中的细胞动力学和活力进行定量。与FACScan并行,在三周内的三个时间点对细胞形态进行光学比较,以照相方式观察后处理细胞表型的任何变化。我们对这种新型的空气动力辅助穿线方法的开发研究发现了一种独特的生物微加工方法,该方法将细胞穿刺中的细胞电纺丝加入到支架制造中。 (C)2007 Wiley期刊公司

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