Department of Biomedical Materials, Institute of Pharmacy, Martin Luther University Halle-Wittenberg, Heinrich-Damerow-Strasse 4, 06120 Halle, Saale, Germany.
Sustainable Materials and Chemistry, Dept. Wood Technology and Wood-based Composites, University of Göttingen, Büsgenweg 4, D-37077 Göttingen, Germany.
Biomater Adv. 2023 Nov;154:213589. doi: 10.1016/j.bioadv.2023.213589. Epub 2023 Aug 14.
Delivery of growth factors (GFs) is challenging for regulation of cell proliferation and differentiation due to their rapid inactivation under physiological conditions. Here, a bioactive polyelectrolyte multilayer (PEM) is engineered by the combination of thermoresponsive poly(N-isopropylacrylamide) (PNIPAM) and glycosaminoglycans to be used as reservoir for GF storage. PNIPAM-grafted-chitosan (PChi) with two degrees of substitution (DS) are synthesized, namely LMW* (DS 0.14) and HMW (DS 0.03), by grafting low (2 kDa) and high (10 kDa) molecular weight of PNIPAM on the backbone of chitosan (Chi) to be employed as polycations to form PEM with the polyanion heparin (Hep) at pH 4. Subsequently, PEMs are chemically crosslinked to improve their stability at physiological pH 7.4. Resulting surface and mechanical properties indicate that PEM containing HMW is responsive to temperature at 20 °C and 37 °C, while LMW is not. More importantly, Hep as terminal layer combined with HMW allows not only a better retention of the adhesive protein vitronectin but also a sustained release of FGF-2 at 37 °C. With the synergistic effect of vitronectin and matrix-bound FGF-2, significant promotion on adhesion, proliferation, and migration of 3T3 mouse embryonic fibroblasts is achieved on HMW-containing PEM compared to Chi-containing PEM and exogenously added FGF-2. Thus, PEM containing PNIPAM in combination with bioactive glycosaminoglycans like Hep represents a versatile approach to fabricate a GF delivery system for efficient cell culture, which can be potentially served as cell culture substrate for production of (stem) cells and bioactive wound dressing for tissue regeneration.
由于生长因子 (GFs) 在生理条件下会迅速失活,因此其传递对于细胞增殖和分化的调控具有挑战性。在这里,通过将温敏性聚 (N-异丙基丙烯酰胺) (PNIPAM) 和糖胺聚糖组合,构建了一种具有生物活性的聚电解质多层 (PEM),用作 GF 储存的储库。通过在壳聚糖 (Chi) 的主链上接枝低 (2 kDa) 和高 (10 kDa) 分子量的 PNIPAM,合成了两种取代度 (DS) 的接枝壳聚糖 (PChi),即 LMW*(DS 0.14)和 HMW(DS 0.03),以用作与聚阴离子肝素 (Hep) 在 pH 4 下形成 PEM 的聚阳离子。随后,通过化学交联使 PEM 稳定,以提高其在生理 pH 7.4 下的稳定性。所得的表面和机械性能表明,含有 HMW 的 PEM 在 20°C 和 37°C 时对温度有响应,而 LMW 则没有。更重要的是,作为末端层的 Hep 与 HMW 结合不仅可以更好地保留黏附蛋白 vitronectin,还可以在 37°C 下持续释放 FGF-2。由于 vitronectin 和基质结合的 FGF-2 的协同作用,与含有 Chi 的 PEM 和外加的 FGF-2 相比,含有 HMW 的 PEM 显著促进了 3T3 小鼠胚胎成纤维细胞的黏附、增殖和迁移。因此,含有与 Hep 等生物活性糖胺聚糖结合的 PNIPAM 的 PEM 代表了一种制造高效细胞培养用 GF 递送系统的多功能方法,该系统可作为 (干细胞) 细胞的细胞培养底物和用于组织再生的生物活性伤口敷料。