Halperin-Sternfeld Michal, Netanel Liberman Gal, Kannan Raha, Netti Francesca, Ma Peter X, Arad Shoshana Malis, Adler-Abramovich Lihi
Department of Oral Biology, The Maurice and Gabriela Goldschleger School of Dental Medicine, Sackler Faculty of Medicine, Tel Aviv University, Tel Aviv 6997801, Israel.
The Center for Nanoscience and Nanotechnology, Tel Aviv University, Tel Aviv 6997801, Israel.
Biomedicines. 2022 Jun 11;10(6):1388. doi: 10.3390/biomedicines10061388.
Sulfated polysaccharides of red marine microalgae have recently gained much attention for biomedical applications due to their anti-inflammatory and antioxidant properties. However, their low mechanical properties limit their use in tissue engineering. Herein, to enhance the mechanical properties of the sulfated polysaccharide produced by the red marine microalga, sp. (PS) it was integrated with the fluorenylmethoxycarbonyl diphenylalanine (FmocFF) peptide hydrogelator. Transparent, stable hydrogels were formed when mixing the two components at a 1:1 ratio in three different concentrations. Electron microscopy showed that all hydrogels exhibited a nanofibrous structure, mimicking the extracellular matrix. Furthermore, the hydrogels were injectable, and tunable mechanical properties were obtained by changing the hydrogel concentration. The composite hydrogels allowed the sustained release of curcumin which was controlled by the change in the hydrogel concentration. Finally, the hydrogels supported MC3T3-E1 preosteoblasts viability and calcium deposition. The synergy between the sulfated polysaccharide, with its unique bioactivities, and FmocFF peptide, with its structural and mechanical properties, bears a promising potential for developing novel tunable scaffolds for tissue engineering that may allow cell differentiation into various lineages.
由于其抗炎和抗氧化特性,红色海洋微藻的硫酸化多糖最近在生物医学应用中备受关注。然而,它们较低的机械性能限制了其在组织工程中的应用。在此,为了提高红色海洋微藻 sp. 产生的硫酸化多糖(PS)的机械性能,将其与芴甲氧羰基二苯基丙氨酸(FmocFF)肽水凝胶剂相结合。当以三种不同浓度按 1:1 的比例混合这两种成分时,形成了透明、稳定的水凝胶。电子显微镜显示,所有水凝胶均呈现纳米纤维结构,类似于细胞外基质。此外,这些水凝胶具有可注射性,并且通过改变水凝胶浓度可获得可调的机械性能。复合水凝胶能够实现姜黄素的持续释放,其释放受水凝胶浓度变化的控制。最后,这些水凝胶支持 MC3T3-E1 前成骨细胞的活力和钙沉积。具有独特生物活性的硫酸化多糖与具有结构和机械性能的 FmocFF 肽之间的协同作用,为开发新型可调组织工程支架带来了有前景的潜力,这种支架可能允许细胞分化为各种谱系。