巨噬细胞极化
生物材料
材料科学
再生(生物学)
延伸率
多孔性
炎症
巨噬细胞
生物医学工程
纳米技术
细胞生物学
复合材料
免疫学
化学
生物
医学
极限抗拉强度
体外
生物化学
作者
Tina Tylek,Carina Blum,Andrei Hrynevich,Katrin Schlegelmilch,Tatjana Schilling,Paul D. Dalton,Jürgen Gröll
出处
期刊:Biofabrication
[IOP Publishing]
日期:2019-12-05
卷期号:12 (2): 025007-025007
被引量:153
标识
DOI:10.1088/1758-5090/ab5f4e
摘要
Abstract Macrophages are key players of the innate immune system that can roughly be divided into the pro-inflammatory M1 type and the anti-inflammatory, pro-healing M2 type. While a transient initial pro-inflammatory state is helpful, a prolonged inflammation deteriorates a proper healing and subsequent regeneration. One promising strategy to drive macrophage polarization by biomaterials is precise control over biomaterial geometry. For regenerative approaches, it is of particular interest to identify geometrical parameters that direct human macrophage polarization. For this purpose, we advanced melt electrowriting (MEW) towards the fabrication of fibrous scaffolds with box-shaped pores and precise inter-fiber spacing from 100 μ m down to only 40 μ m. These scaffolds facilitate primary human macrophage elongation accompanied by differentiation towards the M2 type, which was most pronounced for the smallest pore size of 40 μ m. These new findings can be important in helping to design new biomaterials with an enhanced positive impact on tissue regeneration.
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