State Key Laboratory of Tribology, Department of Mechanical Engineering, Tsinghua University, 100084, Beijing, China.
Basic Research Key Laboratory of General Surgery for Digital Medicine, Affiliated Hospital of Hebei University, 071000, Baoding, China.
Nat Commun. 2022 Aug 27;13(1):5056. doi: 10.1038/s41467-022-32804-0.
It is a great challenge to achieve robustly bonded, fully covered, and nanoscaled coating on the surface of electrospun nanofibers. Herein, we develop a controllable, facile, and versatile strategy to in-situ grow superlubricated nano-skin (SLNS) on the single electrospun nanofiber. Specifically, zwitterionic polymer chains are generated from the nanofiber subsurface in an inside-out way, which consequently form a robust network interpenetrating with the polymeric chains of the nanofiber matrix. The nanofibers with SLNS are superlubricated with the coefficient of friction (COF) lower than 0.025, which is about 16-fold of reduction than the original nanofibers. The time-COF plot is very stable after 12, 000 cycles of friction test, and no abrasion is observed. Additionally, the developed nanofibrous membranes possess favorable tensile property and biocompatibility. Furthermore, the nanofibrous membranes with SLNS achieve prevention of post-operative adhesion, which is confirmed in both rat tendon adhesion model and abdominal adhesion model. Compared with clinically-used antiadhesive membranes such as Interceed and DK-film, our nanofibrous membranes are not only more effective but also have the advantage of lower production cost. Therefore, this study demonstrates a potential of the superlubricated nanofibrous membranes in-situ grown based on a SLNS strategy for achieving prevention of post-operative adhesion in clinics.
在电纺纳米纤维表面实现牢固结合、完全覆盖和纳米级涂层是一项巨大的挑战。在此,我们开发了一种可控、简便、通用的策略,可在单根电纺纳米纤维上原位生长超滑纳米表皮(SLNS)。具体而言,两性离子聚合物链从纤维内部以内外的方式生成,从而形成与纳米纤维基质聚合物链相互渗透的牢固网络。具有 SLNS 的纳米纤维具有超低摩擦系数(COF),低于 0.025,比原始纳米纤维降低了约 16 倍。摩擦测试 12000 个循环后,时间-COF 曲线非常稳定,且未观察到磨损。此外,所开发的纳米纤维膜具有良好的拉伸性能和生物相容性。此外,具有 SLNS 的纳米纤维膜能够预防术后粘连,这在大鼠肌腱粘连模型和腹部粘连模型中得到了证实。与临床使用的防粘连膜如 Interceed 和 DK-film 相比,我们的纳米纤维膜不仅更有效,而且还具有生产成本更低的优势。因此,这项研究表明,基于 SLNS 策略原位生长的超滑纳米纤维膜在临床上预防术后粘连具有潜力。