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通过核壳静电纺丝制备用于毛细血管化的纳米孔聚乳酸微管

Fabrication of Nanopores Polylactic Acid Microtubes by Core-Sheath Electrospinning for Capillary Vascularization.

作者信息

Zhou Yingge, Sooriyaarachchi Dilshan, Tan George Z

机构信息

Systems Science and Industrial Engineering, Binghamton University, Binghamton, NY 13902, USA.

Industrial, Manufacturing & Systems Engineering, Texas Tech University, Lubbock, TX 79409, USA.

出版信息

Biomimetics (Basel). 2021 Feb 16;6(1):15. doi: 10.3390/biomimetics6010015.

Abstract

There has been substantial progress in tissue engineering of biological substitutes for medical applications. One of the major challenges in development of complex tissues is the difficulty of creating vascular networks for engineered constructs. The diameter of current artificial vascular channels is usually at millimeter or submillimeter level, while human capillaries are about 5 to 10 µm in diameter. In this paper, a novel core-sheath electrospinning process was adopted to fabricate nanoporous microtubes to mimic the structure of fenestrated capillary vessels. A mixture of polylactic acid (PLA) and polyethylene glycol (PEO) was used as the sheath solution and PEO was used as the core solution. The microtubes were observed under a scanning electron microscope and the images were analyzed by ImageJ. The diameter of the microtubes ranged from 1-8 microns. The diameter of the nanopores ranged from 100 to 800 nm. The statistical analysis showed that the microtube diameter was significantly influenced by the PEO ratio in the sheath solution, pump rate, and the viscosity gradient between the sheath and the core solution. The electrospun microtubes with nanoscale pores highly resemble human fenestrated capillaries. Therefore, the nanoporous microtubes have great potential to support vascularization in engineered tissues.

摘要

在用于医学应用的生物替代物的组织工程方面已经取得了重大进展。复杂组织开发中的主要挑战之一是为工程构建体创建血管网络的困难。当前人造血管通道的直径通常处于毫米或亚毫米级别,而人体毛细血管的直径约为5至10微米。在本文中,采用了一种新型的核壳电纺丝工艺来制造纳米多孔微管,以模拟有孔毛细血管的结构。聚乳酸(PLA)和聚乙二醇(PEO)的混合物用作鞘液,PEO用作芯液。在扫描电子显微镜下观察微管,并通过ImageJ对图像进行分析。微管的直径范围为1至8微米。纳米孔的直径范围为100至800纳米。统计分析表明,微管直径受鞘液中PEO比例、泵速以及鞘液与芯液之间的粘度梯度的显著影响。具有纳米级孔的电纺微管与人体有孔毛细血管高度相似。因此,纳米多孔微管在支持工程组织中的血管化方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55c8/7930995/99cb299c295b/biomimetics-06-00015-g001.jpg

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