Lamberger Zan, Mussoni Camilla, Murenu Nicoletta, Andrade Mier Mateo, Stahlhut Philipp, Ahmad Taufiq, Schaefer Natascha, Villmann Carmen, Zwingelberg Sarah, Groll Jürgen, Lang Gregor
Department of Functional Materials in Medicine and Dentistry and Bavarian Polymer Institute, University of Würzburg, Pleicherwall 2, D-97070, Würzburg, Germany.
Institute for Clinical Neurobiology, University Hospital Würzburg, Versbacherstr. 5, D-97078, Würzburg, Germany.
Adv Healthc Mater. 2025 Feb;14(4):e2402527. doi: 10.1002/adhm.202402527. Epub 2024 Dec 15.
Soft nano- and microfiber-based polymer scaffolds bear enormous potential for their use in cell culture and tissue engineering since they mimic natural collagen structures and may thus serve as biomimetic adhesive substrates. They have, however, so far been restricted to small-scale production in research labs with high batch-to-batch variation. They are commonly produced via electrospinning or melt electrowriting and their delicate nature poses obstacles in detachment, storage, and transportation. This study focuses on overcoming challenges in the high throughput production and practical handling, introducing new methods to reproducibly prepare such scaffolds suitable for quantitative cell culture applications. Attention is given to the seamless handling and transfer of samples without compromising structural integrity. Challenges in detaching fibers without damage as well as storage, and transport are addressed. Cell culture studies demonstrate the methodological advantages, emphasizing the potential for standardized testing and biological readouts of these delicate fiber materials. The developed methods are applicable across various electrospinning and melt electrowriting approaches and can essentially contribute to their utilization in laboratory research and commercial applications.
基于柔软纳米和微米纤维的聚合物支架在细胞培养和组织工程中具有巨大的应用潜力,因为它们模仿天然胶原蛋白结构,因此可以作为仿生粘附底物。然而,到目前为止,它们仅限于在研究实验室中进行小规模生产,批次间差异很大。它们通常通过静电纺丝或熔体电写来生产,其脆弱的性质在分离、储存和运输方面构成了障碍。本研究专注于克服高通量生产和实际操作中的挑战,引入新方法以可重复地制备适用于定量细胞培养应用的此类支架。重点关注在不损害结构完整性的情况下对样品进行无缝处理和转移。解决了无损分离纤维以及储存和运输方面的挑战。细胞培养研究证明了该方法的优势,强调了这些精细纤维材料在标准化测试和生物学读数方面的潜力。所开发的方法适用于各种静电纺丝和熔体电写方法,并能在很大程度上促进它们在实验室研究和商业应用中的利用。