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无油微流控纺丝工艺制备具有可变结和可灌注通道的项链状微纤维

Necklace-Like Microfibers with Variable Knots and Perfusable Channels Fabricated by an Oil-Free Microfluidic Spinning Process.

机构信息

MOE Key Laboratory Bioorganic Phosphorous Chemistry & Chemical Biology, Beijing Key Laboratory of Microanalytical Methods & Instrumentation, Department of Chemistry, Tsinghua University, Beijing, 100084, China.

出版信息

Adv Mater. 2018 Apr;30(14):e1705082. doi: 10.1002/adma.201705082. Epub 2018 Feb 27.

Abstract

Fiber materials with different structural features, which in many cases endow the fibers extraordinary functions, are drawing considerable attention from biomedical and material researchers. Here, perfusable necklace-like knotted microfibers are presented for the first time. Additionally, a novel microfluidic spinning method facilitates the production of variable knots and channels. Not only spindle-, but also hemisphere- and petal-knotted microfibers can be controllably fabricated. Generation and perfusion of both Janus channels and helical channel in the knotted microfibers are also shown. With no need of oil and surfactant, the spinning process is highly cytocompatible. The potential bioengineering and biomedical application of the knotted hollow microfiber is demonstrated by its cell-encapsulation feasibility and the unique liver acinus-like diffusion gradient in the knot. The merits of perfusability, cytocompatibility, and structural diversity of the microfibers may open more avenues for further material and biomedical investigation.

摘要

具有不同结构特征的纤维材料,在许多情况下赋予纤维非凡的功能,引起了生物医学和材料研究人员的相当关注。在这里,首次提出了可灌注的项链状打结微纤维。此外,一种新颖的微流体制纺方法有利于生产各种结和通道。不仅可以可控地制造纺锤状、半球状和花瓣状打结微纤维,还可以制造结中的 Janus 通道和螺旋通道。无需油和表面活性剂,纺丝过程具有高度的细胞相容性。通过其细胞封装的可行性以及结中的独特肝小叶样扩散梯度,证明了打结中空微纤维在生物工程和生物医学中的潜在应用。微纤维的可灌注性、细胞相容性和结构多样性的优点可能为进一步的材料和生物医学研究开辟更多途径。

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