Professorship of Biofabrication, Faculty of Engineering Science, University of Bayreuth, Ludwig-Thoma-Straße 36A, 95447, Bayreuth, Germany.
Department of Cellular Biophysics, Max Planck Institute for Medical Research, Jahnstraße 29, 69120, Heidelberg, Germany.
Adv Healthc Mater. 2024 Mar;13(6):e2303343. doi: 10.1002/adhm.202303343. Epub 2023 Nov 27.
This paper reports on a novel approach for the fabrication of composite multilayered bioink-nanofibers construct. This work achieves this by using a hands-free 3D (bio)printing integrated touch-spinning approach. Additionally, this work investigates the interaction of fibroblasts in different bioinks with the highly aligned touch-spun nanofibers. This work conducts a comprehensive characterization of the rheological properties of the inks, starting with low-strain oscillatory rheology to analyze the viscoelastic behavior, when the material structure remains intact. Moreover, this work performs amplitude sweeps to investigate the stability of the inks under large deformations, rotational rheology to examine the shear thinning profile, and a three-step creep experiment to study time-dependent rheological behavior. The obtained rheological results are correlated to visual observation of the flow behavior of inks. These behaviors span from an ink with zero-shear viscosity, very weak shear thinning, and no thixotropic behavior to inks exhibiting flow stress, pronounced shear thinning, and thixotropy. It is demonstrated that inks have an essential effect on cell behavior. While all bioinks allow a preferred directionality of the fibroblasts along the fiber direction, cells tend to form aggregates in bioinks with higher viscosity, and a considerable number of agglomerates are observed in the presence of laponite-RD.
本文报告了一种用于制造复合多层生物墨水-纳米纤维结构的新方法。这项工作通过使用免提 3D(生物)打印集成触摸纺丝方法来实现这一目标。此外,这项工作还研究了不同生物墨水的成纤维细胞与高度取向的触摸纺纳米纤维的相互作用。这项工作从低应变成分的振荡流变学开始,全面分析了油墨的流变特性,以分析在材料结构完整的情况下的粘弹性行为。此外,这项工作还进行了振幅扫描,以研究在大变形下油墨的稳定性,旋转流变学以研究剪切稀化特性,以及三步骤蠕变实验以研究时变流变特性。获得的流变学结果与油墨流动行为的直观观察相关联。这些行为从具有零剪切粘度、非常弱的剪切稀化和无触变性的油墨到表现出流动应力、明显的剪切稀化和触变性的油墨。结果表明,油墨对细胞行为有重要影响。虽然所有生物墨水都允许成纤维细胞沿着纤维方向优先取向,但在粘度较高的生物墨水中,细胞往往会形成聚集体,并且在存在拉蓬土-RD 的情况下观察到相当数量的团聚体。